WO2007016604A2 - Low-noise high-stability crystal oscillator - Google Patents

Low-noise high-stability crystal oscillator Download PDF

Info

Publication number
WO2007016604A2
WO2007016604A2 PCT/US2006/030018 US2006030018W WO2007016604A2 WO 2007016604 A2 WO2007016604 A2 WO 2007016604A2 US 2006030018 W US2006030018 W US 2006030018W WO 2007016604 A2 WO2007016604 A2 WO 2007016604A2
Authority
WO
WIPO (PCT)
Prior art keywords
signal
amplitude
output
level
line
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2006/030018
Other languages
French (fr)
Other versions
WO2007016604A3 (en
Inventor
Jody Greenberg
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Marvell World Trade Ltd
Original Assignee
Marvell World Trade Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Marvell World Trade Ltd filed Critical Marvell World Trade Ltd
Publication of WO2007016604A2 publication Critical patent/WO2007016604A2/en
Anticipated expiration legal-status Critical
Publication of WO2007016604A3 publication Critical patent/WO2007016604A3/en
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03LAUTOMATIC CONTROL, STARTING, SYNCHRONISATION OR STABILISATION OF GENERATORS OF ELECTRONIC OSCILLATIONS OR PULSES
    • H03L5/00Automatic control of voltage, current, or power
    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03BGENERATION OF OSCILLATIONS, DIRECTLY OR BY FREQUENCY-CHANGING, BY CIRCUITS EMPLOYING ACTIVE ELEMENTS WHICH OPERATE IN A NON-SWITCHING MANNER; GENERATION OF NOISE BY SUCH CIRCUITS
    • H03B5/00Generation of oscillations using amplifier with regenerative feedback from output to input
    • H03B5/30Generation of oscillations using amplifier with regenerative feedback from output to input with frequency-determining element being electromechanical resonator
    • H03B5/32Generation of oscillations using amplifier with regenerative feedback from output to input with frequency-determining element being electromechanical resonator being a piezoelectric resonator
    • H03B5/36Generation of oscillations using amplifier with regenerative feedback from output to input with frequency-determining element being electromechanical resonator being a piezoelectric resonator active element in amplifier being semiconductor device
    • H03B5/364Generation of oscillations using amplifier with regenerative feedback from output to input with frequency-determining element being electromechanical resonator being a piezoelectric resonator active element in amplifier being semiconductor device the amplifier comprising field effect transistors

Definitions

  • the present invention relates generally to crystal oscillators, and more specifically to low-noise, high-stability crystal oscillators.
  • Crystal oscillators are extremely useful circuits. They provide clocks and periodic signal sources for telecommunications, wired and wireless networks, and myriad other electronic applications. For example, crystal oscillators are commonly used to time data transfers between integrated circuits. In these applications, crystal oscillator phase noise and jitter degrades performance, causes data transmission errors, and limits data throughput. Thus, it is desirable to provide crystal oscillators having low-noise and high-stability.
  • the signal-to-noise ratio for a crystal oscillator can be improved by increasing its signal strength. One way to increase signal strength or amplitude is to generate a differential signal, as opposed to a single-ended signal.
  • a differential signal not only provides a signal that is nominally twice the amplitude of a single-ended signal, but provides a level of common-mode rejection as well, which further reduces noise. Also, a buffer receiving these larger oscillator signals can operate at a lower gain resulting in less noise. [0005]
  • excessively large crystal oscillator signals can cause jitter or instability in the oscillator circuit. As these signals become excessive, they may become limited by one or both of a pair of supply voltages for the crystal oscillator. Specifically, electrostatic discharge (ESD) diodes to these supplies can begin to conduct current. This clips the oscillator signals, which adds harmonics and spurious frequency components to the otherwise single-tone signal.
  • ESD electrostatic discharge
  • signals from crystal oscillators typically need to be AC coupled to an integrated circuit that is using the oscillator. If the DC level of the crystal oscillator signals could be well controlled, it would be possible to design an input buffer that could directly connect to the crystal without using the AC coupling capacitors. This would reduce component count, save board space, and reduce costs. This would also help prevent the oscillator signals from being clipped by the ESD diodes.
  • embodiments of the present invention provide circuits, methods, and apparatus that provide low-noise, high-stability crystal oscillators having large differential output signals and DC level controls.
  • One exemplary embodiment of the present invention provides a crystal oscillator having two feedback loops, one for setting the DC levels of its signals, the other for adjusting the amplitude of those signals.
  • Various embodiments of the present invention may incorporate either one or both of these loops, as well as one or more of the features described herein.
  • a specific embodiment of the present invention provides a feedback loop arranged to control the DC level of a crystal oscillator's signals.
  • the DC level can be set to a voltage midway between two supply voltages, to a reference voltage, or to any other appropriate voltage.
  • the voltage may be a ground-referenced voltage that is equal to one- half the minimum supply voltage for the oscillator circuit.
  • This voltage may be a function of either power supply or other condition such as temperature. Alternately, this voltage may be independent of these parameters.
  • This embodiment further provides an amplitude-control feedback loop.
  • This loop sets the amplitude of the output of the crystal oscillator signal to be within a range.
  • the amplitude can be set to give a maximum swing without clipping either supply voltage in order to provide high-stability and minimal jitter.
  • the amplitude control circuit can also be digital for improved noise performance. If this control loop is digital, a startup circuit can be included. In a specific embodiment, the startup circuit is an analog control loop that is disabled in favor of a digital control loop once the crystal oscillator circuit starts. [0011] The time constants or bandwidths of these two loops can be separated such that instabilities are avoided.
  • An exemplary embodiment of the present invention provides an integrated circuit.
  • This integrated circuit includes a means for driving a resonant element to generate the first oscillator signal, means for adjusting a DC level of the first oscillator signal, and means for adjusting an amplitude of the first oscillator signal.
  • This or other embodiments may further provide means for driving the resonant element by providing a drive signal to the resonant element, wherein the drive signal is responsive to the resonant element.
  • This or other embodiments may further provide means for providing the drive signal with a gain circuit.
  • This or other embodiments may further provide for the gain circuit being a MOS transistor. This or other embodiments may further provide means for adjusting the DC level of the first oscillator signal by comparing the first oscillator signal with a bias voltage, and providing an output responsive to the comparison. This or other embodiments may further provide for the gain element being a MOS transistor responsive to the output of the amplifier. This or other embodiments may further provide means for adjusting the DC level of the first oscillation signal to be between two supply voltages received by the integrated circuit. This or other embodiments may further provide means for measuring an amplitude of the first oscillation signal, and means for providing a measurement of the amplitude of the first oscillation signal.
  • This or other embodiments may further provide means for measuring the amplitude of the first oscillation signal using a peak detector. This or other embodiments may further provide for the amplitude of the first oscillation signal being measured using a diode and a capacitance. This or other embodiments may further provide means for comparing the measurement of the amplitude of the first oscillation signal with a high threshold and a low threshold, and means for providing one or more signals in response to the comparison.
  • This or other embodiments may further provide means for decrementing an output value when the amplitude of the first oscillation signal is greater than the high threshold, means for maintaining the output value when the amplitude of the first oscillation signal is less than the high threshold and greater than the low threshold, and means for incrementing the output value when the amplitude of the first oscillation signal is less than the low threshold.
  • This or other embodiments may further provide means for generating a bias current in response to the output value.
  • This or other embodiments may further provide means for providing the bias current to a gain circuit, the gain circuit providing the drive to the resonant element.
  • This or other embodiments may further provide means for setting the DC level of the second oscillation signal using the DC level of the first oscillation signal.
  • This or other embodiments may further provide means for DC coupling the DC level of the first oscillation signal to generate the DC level of the second oscillation signal.
  • Figure 1 is a block diagram of a low-noise, high-stability crystal oscillator according to an embodiment of the present invention
  • Figure 2 is a block diagram of a low-noise, high-stability Pierce crystal oscillator according to an embodiment of the present invention
  • Figure 3 is a schematic of a DC biasing loop for a crystal oscillator according to an embodiment of the present invention
  • FIG. 4 is a flowchart showing the operation of the DC biasing loop, such as the
  • Figure 5 is a schematic of a digital amplitude control loop for a crystal oscillator according to an embodiment of the present invention
  • Figure 6 is a flowchart showing the operation of an amplitude control loop, such as the amplitude control loop of Figure 5;
  • Figure 7 is a schematic of an analog amplitude control loop used to start a crystal oscillator according to an embodiment of the present invention.
  • Figures 8A-8H illustrate various implementations of exemplary embodiments of the present invention.
  • Figure 1 is a block diagram of a low-noise, high-stability crystal oscillator according to an embodiment of the present invention.
  • This figure includes a crystal Xl 110, gain circuit Al 120, amplifier A2 130, amplitude detection circuit 140, resistors Rl 150 and R2 160, and capacitor Cl 170.
  • This figure as with the other included figures, is shown for illustrative purposes and does not limit either the possible embodiments of the present invention or the claims.
  • the crystal Xl 110 is driven by the gain element Al 120.
  • the crystal Xl 110 may be a crystal or other resonant element or circuit, for example, it may be an L-C tank circuit.
  • the gain element Al 120 provides a net inversion and may be as simple as a transistor, though it may alternately be one or more inverters or buffers in series, so long as the combination provides a net signal inversion.
  • the gain element Al 120 provides the gain necessary to drive crystal Xl 110.
  • the signal V2 on line 114, the output terminal of the gain device Al 120 oscillates above and below a DC voltage.
  • This DC voltage is the DC component of the signal V2 on line 114; the oscillation is the AC signal component.
  • Resistor Rl 120 equalizes the DC component of the signal Vl on line 112 with the DC component of the signal V2 on line 114.
  • the two signals, Vl on line 112 and V2 on line 114, are nominally phase shifted by 180 degrees and each are ideally sinusoidal in nature.
  • the DC voltage component of V2 on line 114 is compared to a bias voltage on line 132 by the amplifier A2 130. hi various embodiments, other voltages can be compared to the bias voltage on line 132.
  • the DC component of the signal Vl on line 112 can be compared
  • the resistor Rl 120 is a number of resistors in series, and a voltage at a node between two of these resistors can be compared to the bias voltage on line 132.
  • the bias voltage on line 132 is set to a ground-referenced voltage that is equal to one-half a minimum supply voltage for the oscillator, m other embodiments of the present invention, this bias voltage may be equal to a reference voltage.
  • the bias voltage on line 132 may be equal to a bandgap voltage, hi other embodiments of the present invention, the bias voltage may be a function of VCC, temperature, or other condition; alternately, the bias voltage on line 132 may be independent of one or more of these parameters.
  • the amplifier A2 130 receives the signal V2 on line 114.
  • the amplifier compares the DC component of the signal V2 on line 114 to the bias voltage received on line 132. This comparison generates a signal at the output of the amplifier A2 130. This voltage is then used to set the DC voltage for the signal Vl on line 112.
  • the DC control feedback loop operates as follows. As the DC component of the signal V2 on line 114 increases, the voltage at the output of the amplifier A2 130 decreases. This lowers the DC component of the signal Vl on line 112. Since the signal V2 on line 114 is DC coupled to Vl on line 112, V2 on line 114 is similarly reduced, thus compensating for the original increase.
  • the amplitude detection circuit 140 receives the signal Vl on line 112, and provides a bias current or voltage to the gain circuit Al 120.
  • the amplitude detection circuit 140 compares the oscillation amplitude of the signal Vl on line 112 to one or more thresholds. As the amplitude of the signal Vl on line 112 increases, the amplitude detection circuit 140 decreases the gain of gain circuit Al 120, thus reducing the drive to the crystal Xl 110. This in turn lowers the amplitude of the voltage swing of the signal V2 on line 114. Conversely, as the amplitude of the signal Vl on line 112 decreases, the amplitude detection circuit 140 increases the gain of gain circuit Al 120, which increases the amplitude of V2 on line 114.
  • the gain circuit Al 120 can be as simple as a single transistor in some embodiments of the present invention.
  • this oscillator can be referred to as a Pierce oscillator.
  • the crystal Xl 110 oscillates in the parallel resonance mode.
  • Other types of oscillators may also be improved by embodiments of the present invention. These include Pierce, Colpitts, Hartley, Armstrong, Clapp, and other types of oscillators. An example of a Pierce oscillator is shown in the next figure.
  • FIG. 2 is a block diagram of a low-noise, high-stability Pierce crystal oscillator according to an embodiment of the present invention.
  • This figure includes a crystal Xl 210, transistor Ml 220, bias current source 230, amplifier Al 240, amplitude detection circuit 250, resistors Rl 245 and R2 215, and capacitors Cl 225, C2 255, and C3 247.
  • transistor Ml 220 provides the gain necessary to drive crystal Xl 210.
  • the crystal Xl 1 210 is AC coupled through capacitor Cl 225 to the base of Ml 220. This separates the DC level of the crystal oscillator signal Vl on line 222 from the bias voltage at the gate of transistor Ml 220.
  • resistor R2 215 is a large value resistor that biases the DC voltage of the signal Vl on line 222 such that it equals the DC voltage of the signal V2 on line 224. Since the resistor R2 215 is a large resistor, care should be taken to avoid leakage currents, for example through capacitor Cl 225, or other capacitors that have been omitted for clarity. [0033] The DC component of the signal V2 on line 224 is compared to the bias voltage on line 242 by the amplifier 240. Again, other voltages can be compared to the bias voltage on line 242.
  • the resistor R2 215 can be two or more resistors in series, with a voltage at a node between two of these resistors compared to the bias voltage on line 242.
  • the amplifier 240 provides a voltage output across C3 247 that is coupled to the gate of transistor Ml 220 by resistor Rl 245.
  • the amplifier Al 240 is a transconductance or gm amplifier that provides a current which generates a voltage across capacitor C3 247. This output voltage sets the operating point for Ml 220, which in turn sets the DC component of the signal V2 on line 224.
  • Resistor Rl 254 and capacitor C3 247 provide reverse isolation for the output of the amplifier Al 240 from the large AC swings on the gate of transistor Ml 220.
  • the signal Vl on line 222 is AC coupled through capacitor C2 255 to the amplitude detection circuit 250.
  • the amplitude detection circuit adjusts the bias current provided by the current source IBIAS 230. As the amplitude of the signal Vl on line 222 increases, the current provided by the bias current source 230 is decreased, thereby reducing the amplitude of the signals V2 on line 224 and Vl on line 222. Conversely, as the amplitude of the signal Vl on line 222 decreases, the current provided by the bias current source 230 is increased, thereby increasing the amplitude of the signals V2 on line 224 and Vl on line 222.
  • the feedback loops used to accomplish this may be analog, digital, or a combination thereof.
  • One analog circuit that may be used is shown in the next figure. The subsequent figure shows a method of setting these DC components; the method may be implemented in an analog or digital manner.
  • FIG. 3 is a schematic of a DC biasing loop for a crystal oscillator according to an embodiment of the present invention.
  • This figure includes a crystal Xl 310, transistor Ml 320, current source BIAS 330, amplifier Al 340, resistors Rl 315, R2 317, and R3 350, and capacitors Cl 360, C2 365, C3 370, C4 345, and C5 375.
  • An amplitude detection circuit may be used to adjust the current provided by the current source IBIAS 330, but has been omitted for clarity.
  • the crystal Xl 310 is driven by transistor Ml 320.
  • the crystal signal on line Vl 322 is AC coupled to the gate of Ml 320 by capacitor Cl 360.
  • a series combination of resistors Rl 315 and R2 317 are used to set the DC levels of the signals Vl on line 322 and V2 on line 324 such that they are equal to the DC level of the signal V4 on line 344.
  • Capacitors C3 370 and C5 375 are used to pull or tune the crystal's frequency. In various embodiments, these capacitors can include arrays of switchable capacitors allowing the crystal's frequency to be tuned or modulated, for example as part of an FM modulator.
  • transistor Ml 320 provides the drive current for the crystal Xl 310. As the gate voltage of the transistor Ml 320 increases, the drain current of the device increases rapidly.
  • the DC bias voltage of Ml 320 is typically near ground, that it is biased below the threshold of the transistor Ml 320, such that the transistor Ml 320 is typically off, turning on to provide a pulse of current to the crystal Xl 310 once every oscillation cycle.
  • the signal Vl on line 322 It is desirable for the signal Vl on line 322 to have a large amplitude. However, if this large signal were AC coupled directly to the gate of transistor Ml 320, the gate of transistor Ml 320 would require a DC bias below ground, otherwise it would provide excess drive current to the crystal 310.
  • the amplifier Al 340 is not capable of driving below ground.
  • One alternative is to provide a negative supply voltage for the amplifier Al 340, for example with a charge pump. This solution provides excellent noise performance. Alternately, the signal Vl on line 322 can be reduced in amplitude.
  • capacitor C2 365 is connected from the gate of Ml 322 to ground.
  • capacitors Cl 316 and C2 365 form a capacitive divider that reduces the amplitude of the signal seen at the gate of Ml 320.
  • the DC bias for the gate of Ml 320 is approximately 20OmV, which can be supplied by the amplifier Al 340 without requiring a negative supply voltage.
  • the DC component of the signal V4 on line 344 is set by a feedback loop including amplifier Al 340, resistor R3 350, and transistor Ml 320. Specifically, the voltage signal V4 on line 344 is compared to the bias signal received on line 342 by the amplifier Al 340.
  • the signals V2 on line 324 and Vl on line 322 are each large oscillating signals that are 180 degrees out of phase. Accordingly, if the resistors Rl 315 and R2 317 are equal, the signal V4 on line 344 has approximately the same DC level as the signals Vl on line 322 and V2 on line 324, but with little or no AC component.
  • the signal V4 on line 344 provides a good voltage for comparison to the bias voltage on line 342 by the amplifier Al 340.
  • the amplifier Al 340 provides a voltage output across capacitor C4 345.
  • the capacitor C4 345 can be used to limit the bandwidth, time constant, or frequency response of this loop, hi a specific embodiment, the amplifier Al 340 provides a current output that is converted to a voltage by the capacitor C4 345.
  • the output voltage of the amplifier Al 340 sets the DC bias voltage for transistor Ml 320.
  • the gate-to-source voltage of transistor Ml 320 determines the operating point for the transistor, including its drain voltage, the signal V2 on line 324.
  • FIG. 4 is a flowchart showing the operation of the DC biasing loop, such as the DC biasing loop of Figure 3.
  • a signal from an oscillator is compared to a bias voltage. The comparison is used to set a bias condition for a transistor. The transistor then sets the DC level of the oscillator signal.
  • a first signal is received from a crystal.
  • the DC level or component of the crystal signal is compared to a bias level in act 420.
  • this bias level may be set to be between two supply voltages, to a bandgap or other bias voltage, and it may be designed to track or be independent of supplies, temperature, processing, or other condition. For example, it may be set to a ground-referenced voltage that is approximately one-half a minimum supply voltage for the oscillator signal. Alternately, this bias level may be designed to be independent of one or more of these parameters.
  • a correction signal based on the comparison is generated in act 430.
  • This correction signal is then used to set the DC level of the first crystal signal.
  • the comparison may be done digitally, where the first crystal signal is filtered, digitized, and compared to a second digital value.
  • the loop is analog.
  • the correction signal is used to set a bias voltage for a transistor in act 440.
  • the transistor is used to set a DC level for the first crystal signal.
  • a resistor is used to set a DC level of a second crystal signal in act 460. Additionally, other resistors can be used to set other crystal signals.
  • Embodiments of the present invention can include an amplitude detection circuit.
  • the amplitude detection circuit can set the drive level for a transistor or other circuit used to provide gain for a crystal in a crystal oscillator circuit.
  • This loop can be analog, digital, or a combination thereof.
  • the bandwidth of the amplitude detection circuit can set to be lower than the bandwidth of the DC control loop.
  • other arrangements can be made; for example, the bandwidth of the amplitude detection circuit can set to be higher than the bandwidth of the DC control loop.
  • the amplitude detection circuit is predominantly digital, and the bandwidth of the loop is set by a frequency and at which a value of an accumulator or counter is clocked or updated.
  • One specific circuit that can detect an amplitude and use this information to adjust the amplitude's level is shown in the next figure, while one specific methodology of detecting an amplitude is shown in the subsequent figure.
  • FIG. 5 is a schematic of a digital amplitude control loop for a crystal oscillator according to an embodiment of the present invention.
  • the digital amplitude control loop includes an AC coupling capacitor Cl 510, DC restoration resistor 515, a negative peak detector made up of a diode Dl 520 and capacitor C2 530, window comparator 540, accumulator 550, current digital-to-analog converter (DAC) 560, and a low-pass filter 570.
  • An oscillator signal is received on line Vl 512 by the AC coupling capacitor Cl 510.
  • the current DAC 560 generates a bias current that is filtered by the low-pass filter and provided as current IBIAS on line 562.
  • the bias current on line 562 supplies current to a transistor, such as transistor Ml 320 in Figure 3.
  • a transistor such as transistor Ml 320 in Figure 3.
  • an oscillator signal Vl is received on line 512 and AC coupled as signal V2 on line 512 by AC coupling capacitor Cl 510.
  • the input signal Vl on line 512 may correspond to one of at least two signals, for example, Vl on line 322 or V2 on line 324 in Figure 3. Detecting the amplitude of Vl on line 322 provides isolation between the amplitude detector input and IBIAS current output on line 562.
  • capacitor Cl 510 should be large in comparison to the parasitic capacitances of diode Dl 520 and resistor Rl 515 in order to avoid signal losses that would be caused by the resulting capacitive divider.
  • the resistor Rl 515 sets the DC component of the signal V2 on line 515 to an appropriate bias voltage, BIAS on line 516 in this example.
  • the resistor Rl 515 may be connected to a bias line that is midway between two supplies such as VCC and ground, hi various embodiments, Rl 515 is connected to the same or similar bias line as the BIAS voltage on line 342 in Figure 3.
  • the negative peak of the signal V2 on line 517 is detected by the diode Dl 520 and capacitor C2 530 in order to generate a peak detected output signal V3 on line 532.
  • a positive peak detector can be used, for example, by reversing diode Dl 520.
  • other peak detectors or envelope detectors can be used.
  • the voltage of the signal V3 on line 532 follows. As the signal V2 on line 517 reaches its minimum value or peak, the signal V3 on line 532 reaches a corresponding voltage, plus a diode drop caused by the diode Dl 520.
  • the window comparator 540 compares the signal V3 on line 532 to two thresholds, a high threshold and a low threshold. When the voltage of the signal V3 is lower than the low threshold, signal VL on line 546 is active. When the voltage of the signal V3 on line 532 is between the high threshold and the low threshold, the signal VM on line 544 is active.
  • the window comparator can be two comparators, one that compares the signal V3 on line 532 with a high threshold, and one that compares the signal V3 on line 532 with a low threshold.
  • the accumulator 550 can be an up/down counter that provides a digital word to the current DAC 560. When the signal VL on line 546 is active, the accumulator 550 counts down by one bit. When the signal VH on line 542 is active, the accumulator 550 counts up by one bit.
  • the accumulator 550 When the signal VM on line 544 is active, the accumulator 550 does not change value, hi other embodiments, the accumulator may count in a different manner, so long as the peak detector, accumulator 550, and DAC 560 operate together to properly control the amplitude of the oscillator signals.
  • the accumulator can be clocked by a signal that controls the rate at which the accumulator output can change state.
  • the frequency of this clock signal controls the bandwidth of the amplitude detection circuit.
  • the bandwidth of this amplitude detection circuit is set to be lower than the bandwidth of the DC control loop.
  • the accumulator can alternately be an analog-to-digital converter, such as a flash converter.
  • more complicated functions can be implemented. For example, transfer functions that include poles and zeros can be implemented to more specifically tailor the frequency response of the amplitude detection circuit. The locations of these poles and zeros can also be programmable or otherwise adjustable.
  • the current DAC 560 receives a digital word from the accumulator 550.
  • the digital word can be binarily weighted or thermally decoded, or have some other weighting or combination thereof.
  • the current DAC 560 is typically a number of switches each configured to turn a current source on or off.
  • the resulting current can be filtered and provided to a gain element or transistor, such as transistor Ml 320 in Figure 3.
  • the filtering is performed in this specific example by the low-pass filter 570. This filter removes the high frequency components of the current DAC output, protecting the oscillator gain element from these transients.
  • the current sources may be configured to be independent of supply, temperature, or processing, hi one embodiment of the present invention, as the digital word increases in value, the DAC provides more current to the gain device. In other embodiments, the DAC may provide less current as the digital word increases.
  • the voltage of signal V3 on line 532 is compared to a single threshold. In this case, a single output indicating whether the voltage of signal V3 on line 532 is higher or lower than the threshold is provided. In this configuration, during operation, the comparison signal tends to alternate between one state and another, causing the accumulator to toggle between two levels, and resulting in the current DAC 560 switching between two bias current levels. This tends to add digital switching noise to the oscillator circuit. Using two thresholds provides a window in which the device may operate without changing the output of the accumulator 550 or the resulting bias current level provided by the current DAC 560.
  • FIG. 6 is a flowchart showing the operation of an amplitude control loop, such as the amplitude control loop of Figure 5.
  • an oscillation signal from a crystal is peak detected and compared to a high and a low threshold.
  • the comparison results are used to control an accumulator, which in turn provides an output that is converted to a bias current, the bias current used to drive the gain device or circuit in the oscillator.
  • the peak detection described here detects positive peaks, though negative peak detection can alternately be used.
  • an oscillation signal is received from a crystal. This signal is AC coupled, such that its DC component is removed in act 620.
  • act 630 the DC component of the oscillation signal is peak detected.
  • the peak detected level is then compared to a high and a low threshold in act 640.
  • act 650 it is determined whether the peak level is above a high threshold. If it is, the accumulator is decremented in act 660. If the peak level is not above a high threshold, it is determined whether the peak level is below the low threshold in act 670. If it is, the accumulator is incremented in act 680. If the peak detected value is lower than the high threshold, but higher than the low threshold, the value in the accumulator is maintained in act 690. Again, in various embodiments of the present invention, the accumulator may increment or decrement in different ways according to the exact implementation used. [0060] The value of the accumulator is converted into a current in act 695. Again, this current can be used to drive a transistor or other circuit that is providing gain to the crystal that is generating the oscillation signal.
  • the amplitude detection circuits of the previous figures may have a stable state where the crystal does not oscillate or provide an output signal of sufficient amplitude to properly clock the accumulator 550 in Figure 5. Although the presence of noise typically starts these oscillators, in order to provide a robust and fast start-up, an analog amplitude detection circuit can be used. Once the oscillator is running, the analog amplitude detection circuit can be disabled in favor of a digital amplitude detection circuit, such as the circuit shown in Figure 5. One analog amplitude control circuit that may be used at start-up is shown in the following figure. [0062] Figure 7 is a schematic of an analog amplitude control circuit used to start a crystal oscillator according to an embodiment of the present invention.
  • This figure includes gm amplifier 710 and a p-channel current mirror including transistors Ml 720 and M2 730, and decoupling capacitor C3 725.
  • An input signal Vl is received on line 702 by the gm amplifier 710.
  • the gm amplifier 710 provides a current output that is mirrored by the p-channel current mirror transistors Ml 720 and M2 730.
  • Transistor M2 730 can be connected in parallel with the current DAC in the digital amplitude detector circuit.
  • the signal Vl on line 702 is the negative peak detected signal V3 on line 532 in Figure 5, though in other embodiments, it can be a different signal.
  • the voltage Vl on line 702 decreases, thus decreasing the current provided by the gm amplifier 710 to the p-channel current mirror.
  • this circuit can be disabled in favor of an amplitude detection circuit, such as the amplitude detection circuit shown in Figure 5, or other detection circuits consistent with embodiments of the present invention.
  • This circuit can. be disabled in favor of a digital amplitude detection circuit when the crystal oscillator signals are of sufficient amplitude to properly clock the accumulator circuit.
  • Hysteresis can also be used to avoid a condition where this circuit toggles between its on and off states.
  • the transistors in the above examples are shown as MOS transistors. In other embodiments of the present invention, the devices may be bipolar, HBTs, MESFETS, HFETs, or other types of devices.
  • the capacitors shown may be metal-to-metal capacitors, thin-oxide capacitors, or any other appropriate capacitors, such as the gate of a MOS device.
  • the resistors may be polysilicon resistors, base resistors, implant resistors, or other appropriate type of resistor.
  • the crystals may be crystals operating in parallel or series resonance modes. Alternately, they may be other resonance devices. [0066] Referring now to Figures 8A-10G, various exemplary implementations of the present invention are shown. Referring to Figure 8A, the present invention may be embodied in a hard disk drive 800.
  • the present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8 A at 802.
  • signal processing and/or control circuit 802 and/or other circuits (not shown) in HDD 800 may process data, perform coding and/or encryption, perform calculations, and/or format data that is output to and/or received from a magnetic storage medium 806.
  • HDD 800 may communicate with a host device (not shown) such as a computer, mobile computing devices such as personal digital assistants, cellular phones, media or MP3 players and the like, and/or other devices via one or more wired or wireless communication links 808.
  • HDD 800 may be connected to memory 809, such as random access memory (RAM), a low latency nonvolatile memory such as flash memory, read only memory (ROM) and/or other suitable electronic data storage.
  • RAM random access memory
  • ROM read only memory
  • the present invention may be embodied in a digital versatile disc (DVD) drive 810.
  • the present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8B at 812, and/or mass data storage 818 of DVD drive 810.
  • Signal processing and/or control circuit 812 and/or other circuits (not shown) in DVD 810 may process data, perform coding and/or encryption, perform calculations, and/or format data that is read from and/or data written to an optical storage medium 816.
  • signal processing and/or control circuit 812 and/or other circuits (not shown) in DVD 810 can also perform other functions such as encoding and/or decoding and/or any other signal processing functions associated with a DVD drive.
  • DVD drive 810 may communicate with an output device (not shown) such as a computer, television or other device via one or more wired or wireless communication links 817.
  • DVD 810 may communicate with mass data storage 818 that stores data in a nonvolatile manner.
  • Mass data storage 818 may include a hard disk drive (HDD) such as that shown in Figure 8A.
  • the HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8".
  • DVD 810 may be connected to memory 819, such as RAM, ROM, low latency nonvolatile memory such as flash memory, and/or other suitable electronic data storage.
  • the present invention may be embodied in a high definition television (HDTV) 820.
  • the present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8 C at 822, a WLAN interface and/or mass data storage of the HDTV 820.
  • HDTV 820 receives HDTV input signals in either a wired or wireless format and generates HDTV output signals for a display 826.
  • signal processing circuit and/or control circuit 822 and/or other circuits (not shown) of HDTV 820 may process data, perform coding and/or encryption, perform calculations, format data and/or perform any other type of HDTV processing that may be required.
  • HDTV 820 may communicate with mass data storage 827 that stores data in a nonvolatile manner such as optical and/or magnetic storage devices. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8". HDTV 820 may be connected to memory 828 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. HDTV 820 also may support connections with a WLAN via a WLAN network interface 829.
  • memory 828 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage.
  • HDTV 820 also may support connections with a WLAN via a WLAN network interface 829.
  • the present invention implements a control system of a vehicle 830, a WLAN interface and/or mass data storage of the vehicle control system.
  • the present invention implements a powertrain control system 832 that receives inputs from one or more sensors such as temperature sensors, pressure sensors, rotational sensors, airflow sensors and/or any other suitable sensors and/or that generates one or more output control signals such as engine operating parameters, transmission operating parameters, and/or other control signals.
  • control system 840 may likewise receive signals from input sensors 842 and/or output control signals to one or more output devices 844.
  • control system 840 may be part of an anti-lock braking system (ABS), a navigation system, a telematics system, a vehicle telematics system, a lane departure system, an adaptive cruise control system, a vehicle entertainment system such as a stereo, DVD, compact disc and the like. Still other implementations are contemplated.
  • ABS anti-lock braking system
  • Powertrain control system 832 may communicate with mass data storage 846 that stores data in a nonvolatile manner.
  • Mass data storage 846 may include optical and/or magnetic storage devices for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B.
  • the HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8".
  • Powertrain control system 832 may be connected to memory 847 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. Powertrain control system 832 also may support connections with a WLAN via a WLAN network interface 848.
  • the control system 840 may also include mass data storage, memory and/or a WLAN interface (all not shown).
  • the present invention may be embodied in a cellular phone 850 that may include a cellular antenna 851.
  • the present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8E at 852, a WLAN interface and/or mass data storage of the cellular phone 850.
  • cellular phone 850 includes a microphone 856, an audio output 858 such as a speaker and/or audio output jack, a display 860 and/or an input device 862 such as a keypad, pointing device, voice actuation and/or other input device.
  • Signal processing and/or control circuits 852 and/or other circuits (not shown) in cellular phone 850 may process data, perform coding and/or encryption, perform calculations, format data and/or perform other cellular phone functions.
  • Cellular phone 850 may communicate with mass data storage 864 that stores data in a nonvolatile manner such as optical and/or magnetic storage devices for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8".
  • Cellular phone 850 may be connected to memory 866 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. Cellular phone 850 also may support connections with a WLAN via a WLAN network interface 868.
  • the present invention may be embodied in a set top box 880.
  • the present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8F at 884, a WLAN interface and/or mass data storage of the set top box 880.
  • Set top box 880 receives signals from a source such as a broadband source and outputs standard and/or high definition audio/video signals suitable for a display 888 such as a television and/or monitor and/or other video and/or audio output devices.
  • Signal processing and/or control circuits 884 and/or other circuits (not shown) of the set top box 880 may process data, perform coding and/or encryption, perform calculations, format data and/or perform any other set top box function.
  • Set top box 880 may communicate with mass data storage 890 that stores data in a nonvolatile manner.
  • Mass data storage 890 may include optical and/or magnetic storage devices for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B.
  • the HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8".
  • Set top box 880 may be connected to memory 894 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage.
  • Set top box 880 also may support connections with a WLAN via a WLAN network interface 896.
  • the present invention may be embodied in a media player 872.
  • the present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8G at 871, a WLAN interface and/or mass data storage of the media player 872.
  • media player 872 includes a display 876 and/or a user input 877 such as a keypad, touchpad and the like.
  • media player 872 may employ a graphical user interface (GUI) that typically employs menus, drop down menus, icons and/or a point-and-click interface via display 876 and/or user input 877.
  • Media player 872 further includes an audio output 875 such as a speaker and/or audio output jack.
  • Signal processing and/or control circuits 871 and/or other circuits (not shown) of media player 872 may process data, perform coding and/or encryption, perform calculations, format data and/or perform any other media player function.
  • Media player 872 may communicate with mass data storage 870 that stores data such as compressed audio and/or video content in a nonvolatile manner.
  • the compressed audio files include files that are compliant with MP3 format or other suitable compressed audio and/or video formats.
  • the mass data storage may include optical and/or magnetic storage devices for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8A and/or at least one DVD may have the configuration shown in Figure 8B.
  • the HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8".
  • Media player 872 may be connected to memory 873 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage.
  • Media player 872 also may support connections with a WLAN via a WLAN network interface 874.
  • the present invention may be embodied in a Voice over Internet Protocol (VoIP) phone 883 that may include an antenna 839.
  • VoIP Voice over Internet Protocol
  • the present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8H at 882, a wireless interface and/or mass data storage of the VoIP phone 883.
  • VoIP phone 883 includes, in part, a microphone 887, an audio output 889 such as a speaker and/or audio output jack, a display monitor 891, an input device 892 such as a keypad, pointing device, voice actuation and/or other input devices, and a Wireless Fidelity (Wi-Fi) communication module 886.
  • Signal processing and/or control circuits 882 and/or other circuits (not shown) in VoIP phone 883 may process data, perform coding and/or encryption, perform calculations, format data and/or perform other VoIP phone functions.
  • VoIP phone 883 may communicate with mass data storage 502 that stores data in a nonvolatile manner such as optical and/or magnetic storage devices, for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8".
  • VoIP phone 883 may be connected to memory 885, which may be a RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. VoIP phone 883 is configured to establish communications link with a VoIP network (not shown) via Wi-Fi communication module 886.

Landscapes

  • Oscillators With Electromechanical Resonators (AREA)
  • Stabilization Of Oscillater, Synchronisation, Frequency Synthesizers (AREA)

Abstract

Apparatus and method for providing high stability crystal oscillator, see figure 2. A crystal oscillator (with resonator 210) is shown having controlled-amplitude differential output signals via amplitude control (250) and DC level control via (240). The DC level feedback loop can set the DC component of the oscillator signals to a voltage midway between the two supply volatges. The amplitude control loop sets the amplitude of the output of the crystal oscillator signal to be within a range. The amplitude can be set to provide a maximum swing without clipping the supply voltages in order to provide high stability and minimal jitter. The time constants of the two loops can be separated such that instabihtes are avoided.

Description

LOW-NOISE HIGH-STABILITY CRYSTAL OSCILLATOR
[0001] This application claims the benefit of United States provisional application number 60/704,525 filed Aug. 1, 2005, and United States provisional application number 60/722,734 filed September 30, 2005, the contents of both of which are incorporated herein by reference in their entirety. This application also claims benefit of United States application number 11,242,621 filed October 3, 2005, the content of which is incorporated herein by reference in its entirety.
BACKGROUND [0002] The present invention relates generally to crystal oscillators, and more specifically to low-noise, high-stability crystal oscillators.
[0003] Crystal oscillators are extremely useful circuits. They provide clocks and periodic signal sources for telecommunications, wired and wireless networks, and myriad other electronic applications. For example, crystal oscillators are commonly used to time data transfers between integrated circuits. In these applications, crystal oscillator phase noise and jitter degrades performance, causes data transmission errors, and limits data throughput. Thus, it is desirable to provide crystal oscillators having low-noise and high-stability. [0004] The signal-to-noise ratio for a crystal oscillator can be improved by increasing its signal strength. One way to increase signal strength or amplitude is to generate a differential signal, as opposed to a single-ended signal. A differential signal not only provides a signal that is nominally twice the amplitude of a single-ended signal, but provides a level of common-mode rejection as well, which further reduces noise. Also, a buffer receiving these larger oscillator signals can operate at a lower gain resulting in less noise. [0005] Unfortunately, excessively large crystal oscillator signals can cause jitter or instability in the oscillator circuit. As these signals become excessive, they may become limited by one or both of a pair of supply voltages for the crystal oscillator. Specifically, electrostatic discharge (ESD) diodes to these supplies can begin to conduct current. This clips the oscillator signals, which adds harmonics and spurious frequency components to the otherwise single-tone signal. These harmonics pull or shift the oscillator operating frequency, resulting in center frequency inaccuracies. [0006] Also, signals from crystal oscillators typically need to be AC coupled to an integrated circuit that is using the oscillator. If the DC level of the crystal oscillator signals could be well controlled, it would be possible to design an input buffer that could directly connect to the crystal without using the AC coupling capacitors. This would reduce component count, save board space, and reduce costs. This would also help prevent the oscillator signals from being clipped by the ESD diodes.
[0007] Thus, what is needed are circuits, methods, and apparatus that provide crystal oscillators having large, amplitude-controlled differential signal outputs and mechanisms for controlling their DC levels.
SUMMARY
[0008] Accordingly, embodiments of the present invention provide circuits, methods, and apparatus that provide low-noise, high-stability crystal oscillators having large differential output signals and DC level controls. One exemplary embodiment of the present invention provides a crystal oscillator having two feedback loops, one for setting the DC levels of its signals, the other for adjusting the amplitude of those signals. Various embodiments of the present invention may incorporate either one or both of these loops, as well as one or more of the features described herein. [0009] A specific embodiment of the present invention provides a feedback loop arranged to control the DC level of a crystal oscillator's signals. The DC level can be set to a voltage midway between two supply voltages, to a reference voltage, or to any other appropriate voltage. For example, the voltage may be a ground-referenced voltage that is equal to one- half the minimum supply voltage for the oscillator circuit. This voltage may be a function of either power supply or other condition such as temperature. Alternately, this voltage may be independent of these parameters.
[0010] This embodiment further provides an amplitude-control feedback loop. This loop sets the amplitude of the output of the crystal oscillator signal to be within a range. The amplitude can be set to give a maximum swing without clipping either supply voltage in order to provide high-stability and minimal jitter. The amplitude control circuit can also be digital for improved noise performance. If this control loop is digital, a startup circuit can be included. In a specific embodiment, the startup circuit is an analog control loop that is disabled in favor of a digital control loop once the crystal oscillator circuit starts. [0011] The time constants or bandwidths of these two loops can be separated such that instabilities are avoided. Specifically, interaction between the loops is minimized by setting the bandwidth of the amplitude control loop to be much lower than the bandwidth of the DC level control loop. [0012] An exemplary embodiment of the present invention provides an integrated circuit. This integrated circuit includes a means for driving a resonant element to generate the first oscillator signal, means for adjusting a DC level of the first oscillator signal, and means for adjusting an amplitude of the first oscillator signal. [0013] This or other embodiments may further provide means for driving the resonant element by providing a drive signal to the resonant element, wherein the drive signal is responsive to the resonant element. This or other embodiments may further provide means for providing the drive signal with a gain circuit. This or other embodiments may further provide for the gain circuit being a MOS transistor. This or other embodiments may further provide means for adjusting the DC level of the first oscillator signal by comparing the first oscillator signal with a bias voltage, and providing an output responsive to the comparison. This or other embodiments may further provide for the gain element being a MOS transistor responsive to the output of the amplifier. This or other embodiments may further provide means for adjusting the DC level of the first oscillation signal to be between two supply voltages received by the integrated circuit. This or other embodiments may further provide means for measuring an amplitude of the first oscillation signal, and means for providing a measurement of the amplitude of the first oscillation signal. This or other embodiments may further provide means for measuring the amplitude of the first oscillation signal using a peak detector. This or other embodiments may further provide for the amplitude of the first oscillation signal being measured using a diode and a capacitance. This or other embodiments may further provide means for comparing the measurement of the amplitude of the first oscillation signal with a high threshold and a low threshold, and means for providing one or more signals in response to the comparison. This or other embodiments may further provide means for decrementing an output value when the amplitude of the first oscillation signal is greater than the high threshold, means for maintaining the output value when the amplitude of the first oscillation signal is less than the high threshold and greater than the low threshold, and means for incrementing the output value when the amplitude of the first oscillation signal is less than the low threshold. This or other embodiments may further provide means for generating a bias current in response to the output value. This or other embodiments may further provide means for providing the bias current to a gain circuit, the gain circuit providing the drive to the resonant element. This or other embodiments may further provide means for setting the DC level of the second oscillation signal using the DC level of the first oscillation signal. This or other embodiments may further provide means for DC coupling the DC level of the first oscillation signal to generate the DC level of the second oscillation signal.
[0014] A better understanding of the nature and advantages of the present invention may be gained with reference to the following detailed description and the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a block diagram of a low-noise, high-stability crystal oscillator according to an embodiment of the present invention;
[0016] Figure 2 is a block diagram of a low-noise, high-stability Pierce crystal oscillator according to an embodiment of the present invention; [0017] Figure 3 is a schematic of a DC biasing loop for a crystal oscillator according to an embodiment of the present invention;
[0018] Figure 4 is a flowchart showing the operation of the DC biasing loop, such as the
DC biasing loop of Figure 3;
[0019] Figure 5 is a schematic of a digital amplitude control loop for a crystal oscillator according to an embodiment of the present invention;
[0020] Figure 6 is a flowchart showing the operation of an amplitude control loop, such as the amplitude control loop of Figure 5;
[0021] Figure 7 is a schematic of an analog amplitude control loop used to start a crystal oscillator according to an embodiment of the present invention; and [0022] Figures 8A-8H illustrate various implementations of exemplary embodiments of the present invention.
DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0023] Figure 1 is a block diagram of a low-noise, high-stability crystal oscillator according to an embodiment of the present invention. This figure includes a crystal Xl 110, gain circuit Al 120, amplifier A2 130, amplitude detection circuit 140, resistors Rl 150 and R2 160, and capacitor Cl 170. This figure, as with the other included figures, is shown for illustrative purposes and does not limit either the possible embodiments of the present invention or the claims.
[0024] The crystal Xl 110 is driven by the gain element Al 120. In this and other embodiments of the present invention, the crystal Xl 110 may be a crystal or other resonant element or circuit, for example, it may be an L-C tank circuit. The gain element Al 120 provides a net inversion and may be as simple as a transistor, though it may alternately be one or more inverters or buffers in series, so long as the combination provides a net signal inversion. The gain element Al 120 provides the gain necessary to drive crystal Xl 110. [0025] In operation, the signal V2 on line 114, the output terminal of the gain device Al 120, oscillates above and below a DC voltage. This DC voltage is the DC component of the signal V2 on line 114; the oscillation is the AC signal component. Resistor Rl 120 equalizes the DC component of the signal Vl on line 112 with the DC component of the signal V2 on line 114. The two signals, Vl on line 112 and V2 on line 114, are nominally phase shifted by 180 degrees and each are ideally sinusoidal in nature. [0026] The DC voltage component of V2 on line 114 is compared to a bias voltage on line 132 by the amplifier A2 130. hi various embodiments, other voltages can be compared to the bias voltage on line 132. For example, the DC component of the signal Vl on line 112 can be compared, hi other embodiments, the resistor Rl 120 is a number of resistors in series, and a voltage at a node between two of these resistors can be compared to the bias voltage on line 132. hi a specific embodiment of the present invention, the bias voltage on line 132 is set to a ground-referenced voltage that is equal to one-half a minimum supply voltage for the oscillator, m other embodiments of the present invention, this bias voltage may be equal to a reference voltage. For example, the bias voltage on line 132 may be equal to a bandgap voltage, hi other embodiments of the present invention, the bias voltage may be a function of VCC, temperature, or other condition; alternately, the bias voltage on line 132 may be independent of one or more of these parameters.
[0027] The amplifier A2 130 receives the signal V2 on line 114. The amplifier compares the DC component of the signal V2 on line 114 to the bias voltage received on line 132. This comparison generates a signal at the output of the amplifier A2 130. This voltage is then used to set the DC voltage for the signal Vl on line 112.
[0028] The DC control feedback loop operates as follows. As the DC component of the signal V2 on line 114 increases, the voltage at the output of the amplifier A2 130 decreases. This lowers the DC component of the signal Vl on line 112. Since the signal V2 on line 114 is DC coupled to Vl on line 112, V2 on line 114 is similarly reduced, thus compensating for the original increase.
[0029] The amplitude detection circuit 140 receives the signal Vl on line 112, and provides a bias current or voltage to the gain circuit Al 120. The amplitude detection circuit 140 compares the oscillation amplitude of the signal Vl on line 112 to one or more thresholds. As the amplitude of the signal Vl on line 112 increases, the amplitude detection circuit 140 decreases the gain of gain circuit Al 120, thus reducing the drive to the crystal Xl 110. This in turn lowers the amplitude of the voltage swing of the signal V2 on line 114. Conversely, as the amplitude of the signal Vl on line 112 decreases, the amplitude detection circuit 140 increases the gain of gain circuit Al 120, which increases the amplitude of V2 on line 114. In this way, feedback is provided such that the amplitude of the signal V2 on line 114 is maintained at a certain level (or within a range of levels, depending on the exact implementation.) [0030] Again, the gain circuit Al 120 can be as simple as a single transistor in some embodiments of the present invention. When it is a transistor, such as a MOS transistor, this oscillator can be referred to as a Pierce oscillator. In this configuration, the crystal Xl 110 oscillates in the parallel resonance mode. Other types of oscillators may also be improved by embodiments of the present invention. These include Pierce, Colpitts, Hartley, Armstrong, Clapp, and other types of oscillators. An example of a Pierce oscillator is shown in the next figure.
[0031] Figure 2 is a block diagram of a low-noise, high-stability Pierce crystal oscillator according to an embodiment of the present invention. This figure includes a crystal Xl 210, transistor Ml 220, bias current source 230, amplifier Al 240, amplitude detection circuit 250, resistors Rl 245 and R2 215, and capacitors Cl 225, C2 255, and C3 247. [0032] In this configuration, transistor Ml 220 provides the gain necessary to drive crystal Xl 210. The crystal Xl 1 210 is AC coupled through capacitor Cl 225 to the base of Ml 220. This separates the DC level of the crystal oscillator signal Vl on line 222 from the bias voltage at the gate of transistor Ml 220. As before, resistor R2 215 is a large value resistor that biases the DC voltage of the signal Vl on line 222 such that it equals the DC voltage of the signal V2 on line 224. Since the resistor R2 215 is a large resistor, care should be taken to avoid leakage currents, for example through capacitor Cl 225, or other capacitors that have been omitted for clarity. [0033] The DC component of the signal V2 on line 224 is compared to the bias voltage on line 242 by the amplifier 240. Again, other voltages can be compared to the bias voltage on line 242. For example, the resistor R2 215 can be two or more resistors in series, with a voltage at a node between two of these resistors compared to the bias voltage on line 242. The amplifier 240 provides a voltage output across C3 247 that is coupled to the gate of transistor Ml 220 by resistor Rl 245. hi a specific embodiment, the amplifier Al 240 is a transconductance or gm amplifier that provides a current which generates a voltage across capacitor C3 247. This output voltage sets the operating point for Ml 220, which in turn sets the DC component of the signal V2 on line 224. Resistor Rl 254 and capacitor C3 247 provide reverse isolation for the output of the amplifier Al 240 from the large AC swings on the gate of transistor Ml 220.
[0034] More specifically, when the DC component of the signal V2 on line 224 is higher than the level of the bias signal on line 242, the output voltage of the amplifier Al 240 is reduced. This reduces the gate-to-source voltage of Ml 220, which increases the DC voltage of the signal V2 on line 224.
[0035] The signal Vl on line 222 is AC coupled through capacitor C2 255 to the amplitude detection circuit 250. The amplitude detection circuit adjusts the bias current provided by the current source IBIAS 230. As the amplitude of the signal Vl on line 222 increases, the current provided by the bias current source 230 is decreased, thereby reducing the amplitude of the signals V2 on line 224 and Vl on line 222. Conversely, as the amplitude of the signal Vl on line 222 decreases, the current provided by the bias current source 230 is increased, thereby increasing the amplitude of the signals V2 on line 224 and Vl on line 222. [0036] There are various ways in which the DC components of the oscillator voltage signals can be set or controlled. The feedback loops used to accomplish this may be analog, digital, or a combination thereof. One analog circuit that may be used is shown in the next figure. The subsequent figure shows a method of setting these DC components; the method may be implemented in an analog or digital manner.
[0037] Figure 3 is a schematic of a DC biasing loop for a crystal oscillator according to an embodiment of the present invention. This figure includes a crystal Xl 310, transistor Ml 320, current source BIAS 330, amplifier Al 340, resistors Rl 315, R2 317, and R3 350, and capacitors Cl 360, C2 365, C3 370, C4 345, and C5 375. An amplitude detection circuit may be used to adjust the current provided by the current source IBIAS 330, but has been omitted for clarity. [0038] The crystal Xl 310 is driven by transistor Ml 320. The crystal signal on line Vl 322 is AC coupled to the gate of Ml 320 by capacitor Cl 360. A series combination of resistors Rl 315 and R2 317 are used to set the DC levels of the signals Vl on line 322 and V2 on line 324 such that they are equal to the DC level of the signal V4 on line 344. Capacitors C3 370 and C5 375 are used to pull or tune the crystal's frequency. In various embodiments, these capacitors can include arrays of switchable capacitors allowing the crystal's frequency to be tuned or modulated, for example as part of an FM modulator. [0039] Again, transistor Ml 320 provides the drive current for the crystal Xl 310. As the gate voltage of the transistor Ml 320 increases, the drain current of the device increases rapidly. Accordingly, the DC bias voltage of Ml 320 is typically near ground, that it is biased below the threshold of the transistor Ml 320, such that the transistor Ml 320 is typically off, turning on to provide a pulse of current to the crystal Xl 310 once every oscillation cycle. [0040] It is desirable for the signal Vl on line 322 to have a large amplitude. However, if this large signal were AC coupled directly to the gate of transistor Ml 320, the gate of transistor Ml 320 would require a DC bias below ground, otherwise it would provide excess drive current to the crystal 310. However, the amplifier Al 340 is not capable of driving below ground. One alternative is to provide a negative supply voltage for the amplifier Al 340, for example with a charge pump. This solution provides excellent noise performance. Alternately, the signal Vl on line 322 can be reduced in amplitude.
[0041] Accordingly, in this specific example, capacitor C2 365 is connected from the gate of Ml 322 to ground. In this way, capacitors Cl 316 and C2 365 form a capacitive divider that reduces the amplitude of the signal seen at the gate of Ml 320. This allows the gate of transistor Ml 320 to have a DC bias above ground. In a specific embodiment, the DC bias for the gate of Ml 320 is approximately 20OmV, which can be supplied by the amplifier Al 340 without requiring a negative supply voltage.
[0042] The DC component of the signal V4 on line 344 is set by a feedback loop including amplifier Al 340, resistor R3 350, and transistor Ml 320. Specifically, the voltage signal V4 on line 344 is compared to the bias signal received on line 342 by the amplifier Al 340. The signals V2 on line 324 and Vl on line 322 are each large oscillating signals that are 180 degrees out of phase. Accordingly, if the resistors Rl 315 and R2 317 are equal, the signal V4 on line 344 has approximately the same DC level as the signals Vl on line 322 and V2 on line 324, but with little or no AC component. Thus, the signal V4 on line 344 provides a good voltage for comparison to the bias voltage on line 342 by the amplifier Al 340. [0043] The amplifier Al 340 provides a voltage output across capacitor C4 345. The capacitor C4 345 can be used to limit the bandwidth, time constant, or frequency response of this loop, hi a specific embodiment, the amplifier Al 340 provides a current output that is converted to a voltage by the capacitor C4 345. The output voltage of the amplifier Al 340 sets the DC bias voltage for transistor Ml 320. The gate-to-source voltage of transistor Ml 320 determines the operating point for the transistor, including its drain voltage, the signal V2 on line 324. [0044] Figure 4 is a flowchart showing the operation of the DC biasing loop, such as the DC biasing loop of Figure 3. According to this method, a signal from an oscillator is compared to a bias voltage. The comparison is used to set a bias condition for a transistor. The transistor then sets the DC level of the oscillator signal. [0045] Specifically, in act 410, a first signal is received from a crystal. The DC level or component of the crystal signal is compared to a bias level in act 420. Again, this bias level may be set to be between two supply voltages, to a bandgap or other bias voltage, and it may be designed to track or be independent of supplies, temperature, processing, or other condition. For example, it may be set to a ground-referenced voltage that is approximately one-half a minimum supply voltage for the oscillator signal. Alternately, this bias level may be designed to be independent of one or more of these parameters.
[0046] A correction signal based on the comparison is generated in act 430. This correction signal is then used to set the DC level of the first crystal signal. There are many ways that this may be done, and they may depend on the particular circuit topology that is used. For example, the comparison may be done digitally, where the first crystal signal is filtered, digitized, and compared to a second digital value. In other embodiments of the present invention, the loop is analog.
[0047] In this specific example, the correction signal is used to set a bias voltage for a transistor in act 440. In act 450, the transistor is used to set a DC level for the first crystal signal. A resistor is used to set a DC level of a second crystal signal in act 460. Additionally, other resistors can be used to set other crystal signals.
[0048] Embodiments of the present invention and can include an amplitude detection circuit. The amplitude detection circuit can set the drive level for a transistor or other circuit used to provide gain for a crystal in a crystal oscillator circuit. This loop can be analog, digital, or a combination thereof. Again, to avoid interaction with a DC control loop, the bandwidth of the amplitude detection circuit can set to be lower than the bandwidth of the DC control loop. In other embodiments, other arrangements can be made; for example, the bandwidth of the amplitude detection circuit can set to be higher than the bandwidth of the DC control loop. In one specific embodiment of the present invention, the amplitude detection circuit is predominantly digital, and the bandwidth of the loop is set by a frequency and at which a value of an accumulator or counter is clocked or updated. One specific circuit that can detect an amplitude and use this information to adjust the amplitude's level is shown in the next figure, while one specific methodology of detecting an amplitude is shown in the subsequent figure.
[0049] Figure 5 is a schematic of a digital amplitude control loop for a crystal oscillator according to an embodiment of the present invention. The digital amplitude control loop includes an AC coupling capacitor Cl 510, DC restoration resistor 515, a negative peak detector made up of a diode Dl 520 and capacitor C2 530, window comparator 540, accumulator 550, current digital-to-analog converter (DAC) 560, and a low-pass filter 570. An oscillator signal is received on line Vl 512 by the AC coupling capacitor Cl 510. The current DAC 560 generates a bias current that is filtered by the low-pass filter and provided as current IBIAS on line 562. In a specific embodiment, the bias current on line 562 supplies current to a transistor, such as transistor Ml 320 in Figure 3. [0050] Again, an oscillator signal Vl is received on line 512 and AC coupled as signal V2 on line 512 by AC coupling capacitor Cl 510. The input signal Vl on line 512 may correspond to one of at least two signals, for example, Vl on line 322 or V2 on line 324 in Figure 3. Detecting the amplitude of Vl on line 322 provides isolation between the amplitude detector input and IBIAS current output on line 562. The size of capacitor Cl 510 should be large in comparison to the parasitic capacitances of diode Dl 520 and resistor Rl 515 in order to avoid signal losses that would be caused by the resulting capacitive divider. The resistor Rl 515 sets the DC component of the signal V2 on line 515 to an appropriate bias voltage, BIAS on line 516 in this example. In an exemplary embodiment of the present invention, the resistor Rl 515 may be connected to a bias line that is midway between two supplies such as VCC and ground, hi various embodiments, Rl 515 is connected to the same or similar bias line as the BIAS voltage on line 342 in Figure 3.
[0051] The negative peak of the signal V2 on line 517 is detected by the diode Dl 520 and capacitor C2 530 in order to generate a peak detected output signal V3 on line 532. In other embodiments, a positive peak detector can be used, for example, by reversing diode Dl 520. In other embodiments, other peak detectors or envelope detectors can be used. As the voltage of the signal V2 on line 517 decreases, the voltage of the signal V3 on line 532 follows. As the signal V2 on line 517 reaches its minimum value or peak, the signal V3 on line 532 reaches a corresponding voltage, plus a diode drop caused by the diode Dl 520. In various embodiments of the present invention, other peak detectors that compensate for, or do not include this diode drop, are used. As the level of the signal V2 on line 517 increases, the diode Dl 520 reverse biases, and is effectively disconnected from the capacitor C2 530, which holds the negative peak voltage. [0052] The window comparator 540 compares the signal V3 on line 532 to two thresholds, a high threshold and a low threshold. When the voltage of the signal V3 is lower than the low threshold, signal VL on line 546 is active. When the voltage of the signal V3 on line 532 is between the high threshold and the low threshold, the signal VM on line 544 is active. When the voltage of the signal V3 on line 532 is higher than the high threshold, the signal VH on line 542 is active, hi various embodiments of the present invention, the signal VM on line 544 is not required. In various embodiments, the window comparator can be two comparators, one that compares the signal V3 on line 532 with a high threshold, and one that compares the signal V3 on line 532 with a low threshold. [0053] The accumulator 550 can be an up/down counter that provides a digital word to the current DAC 560. When the signal VL on line 546 is active, the accumulator 550 counts down by one bit. When the signal VH on line 542 is active, the accumulator 550 counts up by one bit. When the signal VM on line 544 is active, the accumulator 550 does not change value, hi other embodiments, the accumulator may count in a different manner, so long as the peak detector, accumulator 550, and DAC 560 operate together to properly control the amplitude of the oscillator signals.
[0054] The accumulator can be clocked by a signal that controls the rate at which the accumulator output can change state. The frequency of this clock signal controls the bandwidth of the amplitude detection circuit. In one specific embodiment of the present invention, in order to avoid interactions with a DC control loop, the bandwidth of this amplitude detection circuit is set to be lower than the bandwidth of the DC control loop. The accumulator can alternately be an analog-to-digital converter, such as a flash converter. Also, more complicated functions can be implemented. For example, transfer functions that include poles and zeros can be implemented to more specifically tailor the frequency response of the amplitude detection circuit. The locations of these poles and zeros can also be programmable or otherwise adjustable.
[0055] The current DAC 560 receives a digital word from the accumulator 550. The digital word can be binarily weighted or thermally decoded, or have some other weighting or combination thereof. The current DAC 560 is typically a number of switches each configured to turn a current source on or off. The resulting current can be filtered and provided to a gain element or transistor, such as transistor Ml 320 in Figure 3. The filtering is performed in this specific example by the low-pass filter 570. This filter removes the high frequency components of the current DAC output, protecting the oscillator gain element from these transients. The current sources may be configured to be independent of supply, temperature, or processing, hi one embodiment of the present invention, as the digital word increases in value, the DAC provides more current to the gain device. In other embodiments, the DAC may provide less current as the digital word increases. [0056] In other embodiments, the voltage of signal V3 on line 532 is compared to a single threshold. In this case, a single output indicating whether the voltage of signal V3 on line 532 is higher or lower than the threshold is provided. In this configuration, during operation, the comparison signal tends to alternate between one state and another, causing the accumulator to toggle between two levels, and resulting in the current DAC 560 switching between two bias current levels. This tends to add digital switching noise to the oscillator circuit. Using two thresholds provides a window in which the device may operate without changing the output of the accumulator 550 or the resulting bias current level provided by the current DAC 560.
[0057] Figure 6 is a flowchart showing the operation of an amplitude control loop, such as the amplitude control loop of Figure 5. In this embodiment of the present invention, an oscillation signal from a crystal is peak detected and compared to a high and a low threshold. The comparison results are used to control an accumulator, which in turn provides an output that is converted to a bias current, the bias current used to drive the gain device or circuit in the oscillator. The peak detection described here detects positive peaks, though negative peak detection can alternately be used. [0058] Specifically, in act 610, an oscillation signal is received from a crystal. This signal is AC coupled, such that its DC component is removed in act 620. In act 630, the DC component of the oscillation signal is peak detected. [0059] The peak detected level is then compared to a high and a low threshold in act 640. In act 650, it is determined whether the peak level is above a high threshold. If it is, the accumulator is decremented in act 660. If the peak level is not above a high threshold, it is determined whether the peak level is below the low threshold in act 670. If it is, the accumulator is incremented in act 680. If the peak detected value is lower than the high threshold, but higher than the low threshold, the value in the accumulator is maintained in act 690. Again, in various embodiments of the present invention, the accumulator may increment or decrement in different ways according to the exact implementation used. [0060] The value of the accumulator is converted into a current in act 695. Again, this current can be used to drive a transistor or other circuit that is providing gain to the crystal that is generating the oscillation signal.
[0061] The amplitude detection circuits of the previous figures may have a stable state where the crystal does not oscillate or provide an output signal of sufficient amplitude to properly clock the accumulator 550 in Figure 5. Although the presence of noise typically starts these oscillators, in order to provide a robust and fast start-up, an analog amplitude detection circuit can be used. Once the oscillator is running, the analog amplitude detection circuit can be disabled in favor of a digital amplitude detection circuit, such as the circuit shown in Figure 5. One analog amplitude control circuit that may be used at start-up is shown in the following figure. [0062] Figure 7 is a schematic of an analog amplitude control circuit used to start a crystal oscillator according to an embodiment of the present invention. This figure includes gm amplifier 710 and a p-channel current mirror including transistors Ml 720 and M2 730, and decoupling capacitor C3 725. [0063] An input signal Vl is received on line 702 by the gm amplifier 710. The gm amplifier 710 provides a current output that is mirrored by the p-channel current mirror transistors Ml 720 and M2 730. Transistor M2 730 can be connected in parallel with the current DAC in the digital amplitude detector circuit. Ih a specific embodiment, the signal Vl on line 702 is the negative peak detected signal V3 on line 532 in Figure 5, though in other embodiments, it can be a different signal. As the amplitude of the crystal oscillator signals increase, the voltage Vl on line 702 decreases, thus decreasing the current provided by the gm amplifier 710 to the p-channel current mirror.
[0064] Again, once the oscillator is running, this circuit can be disabled in favor of an amplitude detection circuit, such as the amplitude detection circuit shown in Figure 5, or other detection circuits consistent with embodiments of the present invention. This circuit can. be disabled in favor of a digital amplitude detection circuit when the crystal oscillator signals are of sufficient amplitude to properly clock the accumulator circuit. Hysteresis can also be used to avoid a condition where this circuit toggles between its on and off states. [0065] The transistors in the above examples are shown as MOS transistors. In other embodiments of the present invention, the devices may be bipolar, HBTs, MESFETS, HFETs, or other types of devices. The capacitors shown may be metal-to-metal capacitors, thin-oxide capacitors, or any other appropriate capacitors, such as the gate of a MOS device. The resistors may be polysilicon resistors, base resistors, implant resistors, or other appropriate type of resistor. The crystals may be crystals operating in parallel or series resonance modes. Alternately, they may be other resonance devices. [0066] Referring now to Figures 8A-10G, various exemplary implementations of the present invention are shown. Referring to Figure 8A, the present invention may be embodied in a hard disk drive 800. The present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8 A at 802. hi some implementations, signal processing and/or control circuit 802 and/or other circuits (not shown) in HDD 800 may process data, perform coding and/or encryption, perform calculations, and/or format data that is output to and/or received from a magnetic storage medium 806. [0067] HDD 800 may communicate with a host device (not shown) such as a computer, mobile computing devices such as personal digital assistants, cellular phones, media or MP3 players and the like, and/or other devices via one or more wired or wireless communication links 808. HDD 800 may be connected to memory 809, such as random access memory (RAM), a low latency nonvolatile memory such as flash memory, read only memory (ROM) and/or other suitable electronic data storage.
[0068] Referring now to Figure 8B, the present invention may be embodied in a digital versatile disc (DVD) drive 810. The present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8B at 812, and/or mass data storage 818 of DVD drive 810. Signal processing and/or control circuit 812 and/or other circuits (not shown) in DVD 810 may process data, perform coding and/or encryption, perform calculations, and/or format data that is read from and/or data written to an optical storage medium 816. In some implementations, signal processing and/or control circuit 812 and/or other circuits (not shown) in DVD 810 can also perform other functions such as encoding and/or decoding and/or any other signal processing functions associated with a DVD drive.
[0069] DVD drive 810 may communicate with an output device (not shown) such as a computer, television or other device via one or more wired or wireless communication links 817. DVD 810 may communicate with mass data storage 818 that stores data in a nonvolatile manner. Mass data storage 818 may include a hard disk drive (HDD) such as that shown in Figure 8A. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8". DVD 810 may be connected to memory 819, such as RAM, ROM, low latency nonvolatile memory such as flash memory, and/or other suitable electronic data storage.
[0070] Referring now to Figure 8C, the present invention may be embodied in a high definition television (HDTV) 820. The present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8 C at 822, a WLAN interface and/or mass data storage of the HDTV 820. HDTV 820 receives HDTV input signals in either a wired or wireless format and generates HDTV output signals for a display 826. In some implementations, signal processing circuit and/or control circuit 822 and/or other circuits (not shown) of HDTV 820 may process data, perform coding and/or encryption, perform calculations, format data and/or perform any other type of HDTV processing that may be required. [0071] HDTV 820 may communicate with mass data storage 827 that stores data in a nonvolatile manner such as optical and/or magnetic storage devices. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8". HDTV 820 may be connected to memory 828 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. HDTV 820 also may support connections with a WLAN via a WLAN network interface 829.
[0072] Referring now to Figure 8D, the present invention implements a control system of a vehicle 830, a WLAN interface and/or mass data storage of the vehicle control system. In some implementations, the present invention implements a powertrain control system 832 that receives inputs from one or more sensors such as temperature sensors, pressure sensors, rotational sensors, airflow sensors and/or any other suitable sensors and/or that generates one or more output control signals such as engine operating parameters, transmission operating parameters, and/or other control signals.
[0073] The present invention may also be embodied in other control systems 840 of vehicle 830. Control system 840 may likewise receive signals from input sensors 842 and/or output control signals to one or more output devices 844. In some implementations, control system 840 may be part of an anti-lock braking system (ABS), a navigation system, a telematics system, a vehicle telematics system, a lane departure system, an adaptive cruise control system, a vehicle entertainment system such as a stereo, DVD, compact disc and the like. Still other implementations are contemplated. [0074] Powertrain control system 832 may communicate with mass data storage 846 that stores data in a nonvolatile manner. Mass data storage 846 may include optical and/or magnetic storage devices for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8". Powertrain control system 832 may be connected to memory 847 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. Powertrain control system 832 also may support connections with a WLAN via a WLAN network interface 848. The control system 840 may also include mass data storage, memory and/or a WLAN interface (all not shown).
[0075] Referring now to Figure 8E, the present invention may be embodied in a cellular phone 850 that may include a cellular antenna 851. The present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8E at 852, a WLAN interface and/or mass data storage of the cellular phone 850. hi some implementations, cellular phone 850 includes a microphone 856, an audio output 858 such as a speaker and/or audio output jack, a display 860 and/or an input device 862 such as a keypad, pointing device, voice actuation and/or other input device. Signal processing and/or control circuits 852 and/or other circuits (not shown) in cellular phone 850 may process data, perform coding and/or encryption, perform calculations, format data and/or perform other cellular phone functions.
[0076] Cellular phone 850 may communicate with mass data storage 864 that stores data in a nonvolatile manner such as optical and/or magnetic storage devices for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8". Cellular phone 850 may be connected to memory 866 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. Cellular phone 850 also may support connections with a WLAN via a WLAN network interface 868.
[0077] Referring now to Figure 8F, the present invention may be embodied in a set top box 880. The present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8F at 884, a WLAN interface and/or mass data storage of the set top box 880. Set top box 880 receives signals from a source such as a broadband source and outputs standard and/or high definition audio/video signals suitable for a display 888 such as a television and/or monitor and/or other video and/or audio output devices. Signal processing and/or control circuits 884 and/or other circuits (not shown) of the set top box 880 may process data, perform coding and/or encryption, perform calculations, format data and/or perform any other set top box function.
[0078] Set top box 880 may communicate with mass data storage 890 that stores data in a nonvolatile manner. Mass data storage 890 may include optical and/or magnetic storage devices for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8". Set top box 880 may be connected to memory 894 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. Set top box 880 also may support connections with a WLAN via a WLAN network interface 896. [0079] Referring now to Figure 8G, the present invention may be embodied in a media player 872. The present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8G at 871, a WLAN interface and/or mass data storage of the media player 872. In some implementations, media player 872 includes a display 876 and/or a user input 877 such as a keypad, touchpad and the like. In some implementations, media player 872 may employ a graphical user interface (GUI) that typically employs menus, drop down menus, icons and/or a point-and-click interface via display 876 and/or user input 877. Media player 872 further includes an audio output 875 such as a speaker and/or audio output jack. Signal processing and/or control circuits 871 and/or other circuits (not shown) of media player 872 may process data, perform coding and/or encryption, perform calculations, format data and/or perform any other media player function.
[0080] Media player 872 may communicate with mass data storage 870 that stores data such as compressed audio and/or video content in a nonvolatile manner. In some implementations, the compressed audio files include files that are compliant with MP3 format or other suitable compressed audio and/or video formats. The mass data storage may include optical and/or magnetic storage devices for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8". Media player 872 may be connected to memory 873 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. Media player 872 also may support connections with a WLAN via a WLAN network interface 874. [0081] Referring to Figure 8H, the present invention may be embodied in a Voice over Internet Protocol (VoIP) phone 883 that may include an antenna 839. The present invention may implement either or both signal processing and/or control circuits, which are generally identified in Figure 8H at 882, a wireless interface and/or mass data storage of the VoIP phone 883. In some implementations, VoIP phone 883includes, in part, a microphone 887, an audio output 889 such as a speaker and/or audio output jack, a display monitor 891, an input device 892 such as a keypad, pointing device, voice actuation and/or other input devices, and a Wireless Fidelity (Wi-Fi) communication module 886. Signal processing and/or control circuits 882 and/or other circuits (not shown) in VoIP phone 883 may process data, perform coding and/or encryption, perform calculations, format data and/or perform other VoIP phone functions.
[0082] VoIP phone 883 may communicate with mass data storage 502 that stores data in a nonvolatile manner such as optical and/or magnetic storage devices, for example hard disk drives HDD and/or DVDs. At least one HDD may have the configuration shown in Figure 8 A and/or at least one DVD may have the configuration shown in Figure 8B. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8". VoIP phone 883 may be connected to memory 885, which may be a RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. VoIP phone 883 is configured to establish communications link with a VoIP network (not shown) via Wi-Fi communication module 886. Still other implementations in addition to those described above are contemplated. [0083] The above description of exemplary embodiments of the invention has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form described, and many modifications and variations are possible in light of the teaching above. The embodiments were chosen and described in order to best explain the principles of the invention and its practical applications to thereby enable others skilled in the art to best utilize the invention in various embodiments and with various modifications as are suited to the particular use contemplated.

Claims

WHAT IS CLAIMED IS:
1. An integrated circuit comprising: a gain element configured to drive a crystal; a DC control loop configured to adjust a DC level of a signal at an output of the gain element; and an amplitude control loop configured to adjust an amplitude of the signal at the output of the gain element.
2. The integrated circuit of claim 1 wherein the gain element has an input responsive to a first node of the crystal and the crystal has a second node responsive to the output of the gain element.
3. The integrated circuit of claim 1 wherein the DC control loop comprises an amplifier configured to compare a signal generated by the output of the gain element to a bias voltage and provide an output responsive to the comparison.
4. The integrated circuit of claim 3 wherein the DC level of the signal at the output of the gain element is adjusted to a voltage that is between two supply voltages received by the integrated circuit.
5. The integrated circuit of claim 1 wherein the amplitude control loop comprises an amplitude measurement circuit configured to provide a measurement of an amplitude of the signal at the input of the gain element.
6. The integrated circuit of claim 5 wherein the amplitude control loop further comprises a comparator configured to compare the measurement of the amplitude of the signal at the output of the gain element with a high threshold and a low threshold, and further configured to provide one or more signals in response to the comparisons.
7. The integrated circuit of claim 6 wherein the amplitude control loop further comprises a counter configured to increment, decrement, or maintain an output value in response to the one or more signals provided by the comparator.
8. The integrated circuit of claim 1 wherein the DC level of a signal generated by the output of the gain element is used to set a DC level of a signal at an input of the gain element.
9. The integrated circuit of claim 8 wherein the DC level of the signal at the output of the gain element is DC coupled to the input of gain element using at least one resistor.
10. A method of generating a first oscillator signal comprising: driving a resonant element to generate the first oscillator signal; adjusting a DC level of the first oscillator signal; and adjusting an amplitude of the first oscillator signal.
11. The method of claim 10 wherein the driving the resonant element is performed by providing a drive signal to the resonant element, and wherein the drive signal is responsive to the resonant element.
12. The method of claim 11 further comprising providing the drive signal with a gain circuit.
13. The method of claim 10 further comprising: adjusting the DC level of the first oscillator signal by: comparing the first oscillator signal with a bias voltage; and providing an output responsive to the comparison.
14. The method of claim 13 further comprising adjusting the DC level of the first oscillation signal to be between two supply voltages received by the integrated circuit.
15. The method of claim 10 further comprising: measuring an amplitude of a second oscillation signal; and providing a measurement of the amplitude of the second oscillation signal.
16. The method of claim 15 further comprising: comparing the measurement of the amplitude of the second oscillation signal with a high threshold and a low threshold; and providing one or more signals in response to the comparison.
17. The method of claim 16 further comprising: decrementing an output value when the amplitude of the second oscillation signal is greater than the high threshold; maintaining the output value when the amplitude of the second oscillation signal is less than the high threshold and greater than the low threshold; and incrementing the output value when the amplitude of the second oscillation signal is less than the low threshold.
18. The method of claim 17 further comprising generating a bias current in response to the output value.
19. The method of claim 18 further comprising providing the bias current to a gain circuit, the gain circuit providing the drive to the resonant element.
20. The method of claim 10 further comprising setting the DC level of the second oscillation signal using the DC level of the first oscillation signal.
21. The method of claim 20 further comprising DC coupling the DC level of the first oscillation signal to generate the DC level of the second oscillation signal.
22. An integrated circuit comprising: a gain element configured to drive a resonant element; a DC control loop configured to adjust a DC level of a signal at an output of the gain element; and an amplitude control loop configured to adjust an amplitude of the signal at the output of the gain element.
PCT/US2006/030018 2005-08-01 2006-08-01 Low-noise high-stability crystal oscillator Ceased WO2007016604A2 (en)

Applications Claiming Priority (6)

Application Number Priority Date Filing Date Title
US70452505P 2005-08-01 2005-08-01
US60/704,525 2005-08-01
US72273405P 2005-09-30 2005-09-30
US60/722,734 2005-09-30
US11/242,621 2005-10-03
US11/242,621 US7292114B2 (en) 2005-08-01 2005-10-03 Low-noise high-stability crystal oscillator

Publications (2)

Publication Number Publication Date
WO2007016604A2 true WO2007016604A2 (en) 2007-02-08
WO2007016604A3 WO2007016604A3 (en) 2008-02-14

Family

ID=37101607

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2006/030018 Ceased WO2007016604A2 (en) 2005-08-01 2006-08-01 Low-noise high-stability crystal oscillator

Country Status (7)

Country Link
US (2) US7292114B2 (en)
EP (1) EP1753126B1 (en)
JP (2) JP4392007B2 (en)
CN (2) CN1909360B (en)
SG (1) SG129423A1 (en)
TW (1) TWI328339B (en)
WO (1) WO2007016604A2 (en)

Families Citing this family (68)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10275723B2 (en) * 2005-09-14 2019-04-30 Oracle International Corporation Policy enforcement via attestations
US10063523B2 (en) * 2005-09-14 2018-08-28 Oracle International Corporation Crafted identities
US9781154B1 (en) 2003-04-01 2017-10-03 Oracle International Corporation Systems and methods for supporting information security and sub-system operational protocol conformance
US7242114B1 (en) 2003-07-08 2007-07-10 Cannon Technologies, Inc. Thermostat device with line under frequency detection and load shedding capability
US7702424B2 (en) 2003-08-20 2010-04-20 Cannon Technologies, Inc. Utility load control management communications protocol
WO2007014146A2 (en) * 2005-07-22 2007-02-01 Cannon Technologies, Inc. Load shedding control for cycled or variable load appliances
US7292114B2 (en) * 2005-08-01 2007-11-06 Marvell World Trade Ltd. Low-noise high-stability crystal oscillator
US7414482B2 (en) * 2006-02-10 2008-08-19 Broadcom Corporation Resonance mode selection using a resonator-synchronized second-order oscillator
US7741920B2 (en) 2006-02-10 2010-06-22 Broadcom Corporation Quadrature oscillator with simplified amplitude, phase and frequency control
US20080116964A1 (en) * 2006-11-22 2008-05-22 Kent Kernahan Apparatus and method for controlling the propagation delay of a circuit by controlling the voltage applied to the circuit
US7548128B2 (en) * 2006-12-19 2009-06-16 Nxp B.V. Systems and methods with reduced reference spurs using a crystal oscillator for broadband communications
DE102007016522B4 (en) * 2007-04-05 2013-06-27 Texas Instruments Deutschland Gmbh Crystal oscillator circuit
DE102007018336A1 (en) * 2007-04-18 2008-10-23 Texas Instruments Deutschland Gmbh 32 kHz low power oscillator
US7616074B2 (en) * 2007-06-28 2009-11-10 Synopsys, Inc. Low-power fast-startup oscillator with digital feedback control
JP4450029B2 (en) * 2007-07-24 2010-04-14 セイコーエプソン株式会社 Oscillation drive circuit, oscillation drive device, physical quantity measurement circuit, physical quantity measurement device, and electronic apparatus
US7639097B2 (en) * 2007-10-11 2009-12-29 Freescale Semiconductor, Inc. Crystal oscillator circuit having fast start-up and method therefor
EP2073377A1 (en) * 2007-12-19 2009-06-24 The Swatch Group Research and Development Ltd. Oscillating quartz circuit with low consumption and active biasing
US20090261914A1 (en) * 2008-04-17 2009-10-22 Mediatek Inc. Crystal oscillator circuits
TWI465100B (en) * 2008-05-30 2014-12-11 Hon Hai Prec Ind Co Ltd Communication terminal and hypnogenesis device
TWI362824B (en) * 2008-09-12 2012-04-21 Phison Electronics Corp Oscillator and driving circuit and oscillation method thereof
CN101686037B (en) * 2008-09-24 2011-10-19 群联电子股份有限公司 Oscillator and its driving circuit and oscillation method
NL2002640C2 (en) * 2009-03-19 2010-09-21 Bruco B V Ultra low three points oscillator assembly, oscillator circuit, and electronic device.
US20100259335A1 (en) * 2009-04-13 2010-10-14 Microchip Technology Incorporated Resistorless feedback biasing for ultra low power crystal oscillator
US8952762B2 (en) * 2009-11-20 2015-02-10 Maxlinear, Inc. Clock-out amplitude calibration scheme to ensure sine-wave clock-out signal
JP5028543B2 (en) * 2010-01-25 2012-09-19 パナソニック株式会社 Oscillator circuit
US8258886B2 (en) 2010-03-30 2012-09-04 Tyco Healthcare Group Lp System and method for improved start-up of self-oscillating electro-mechanical surgical devices
DK2400665T3 (en) 2010-06-22 2016-03-29 Oticon As High voltage-oscillation input / output that is activated in a standard IC process using passive impedance transformation
US8289090B2 (en) * 2010-09-21 2012-10-16 Qualcomm Incorporated Amplitude control for oscillator
KR101706701B1 (en) * 2010-10-26 2017-02-27 마벨 월드 트레이드 리미티드 Crystal oscillator with low-power mode
US8704605B1 (en) 2011-01-19 2014-04-22 Marvell International Ltd. Class-AB XTAL circuit
CN102710217B (en) * 2011-03-28 2014-12-17 联咏科技股份有限公司 Oscillator and control circuit thereof
US8686798B2 (en) * 2011-05-19 2014-04-01 Freescale Semiconductor, Inc. Method and system for testing oscillator circuit
CN102857174B (en) * 2011-06-28 2014-12-31 苏州麦格芯微电子有限公司 Full-automatic gain control (AGC) crystal oscillator realizing low noise rejection and high power supply rejection (PSR)
US9236837B2 (en) * 2011-08-25 2016-01-12 Infineon Technologies Ag System and method for low distortion capacitive signal source amplifier
CN102427328B (en) * 2011-09-28 2013-11-20 北京经纬恒润科技有限公司 Sine wave oscillating circuit
US9528717B2 (en) 2012-02-28 2016-12-27 Cooper Technologies Company Efficiency heating, ventilating, and air-conditioning through extended run-time control
CN103066942B (en) * 2012-12-20 2015-05-20 无锡中科微电子工业技术研究院有限责任公司 Quick-start crystal oscillator circuit with ultra-low power consumption
CN103187945B (en) * 2013-01-23 2018-06-01 东莞市卡萨帝电子科技有限公司 A kind of controllable crystal oscillator of pulsewidth
US9106211B2 (en) * 2013-03-13 2015-08-11 Infineon Technologies Austria Ag System and method for an oversampled data converter
US9019020B2 (en) 2013-04-30 2015-04-28 International Business Machines Corporation Progressively sized digitally-controlled oscillator
CN103684262B (en) * 2013-12-20 2016-05-04 北京遥测技术研究所 A kind of sinusoidal wave quartz oscillator based on analog circuit
WO2015185103A1 (en) 2014-06-02 2015-12-10 Telefonaktiebolaget L M Ericsson (Publ) Oscillator circuit with bias current generator
JP6436599B2 (en) * 2014-09-05 2018-12-12 マーベル ワールド トレード リミテッド Phase noise reduction technology for quartz crystal circuits
JP2016119550A (en) * 2014-12-19 2016-06-30 ファナック株式会社 Quartz oscillator
US9455720B2 (en) * 2014-12-24 2016-09-27 Texas Instruments Incorporated Universal oscillator
JP6572571B2 (en) * 2015-03-16 2019-09-11 セイコーエプソン株式会社 Oscillators, electronic devices and mobile objects
US9473151B1 (en) 2015-06-05 2016-10-18 Telefonaktiebolaget Lm Ericsson (Publ) Low-noise oscillator amplitude regulator
CN106330134B (en) * 2015-06-29 2019-10-22 深圳市中兴微电子技术有限公司 A crystal oscillator circuit and its tuning method
CN106059533B (en) * 2016-06-06 2018-10-19 四川和芯微电子股份有限公司 Low Power-Dissipation CMOS Crystal Oscillator
US10418941B2 (en) * 2016-06-30 2019-09-17 Microchip Technology Incorporated Integrated circuit crystal oscillator having digital automatic gain control comprising oscillation detection and amplitude control loops
KR102591122B1 (en) * 2016-10-13 2023-10-19 에스케이하이닉스 주식회사 Crystal oscillator circuit having low power consumption
WO2018152769A1 (en) * 2017-02-24 2018-08-30 深圳市汇顶科技股份有限公司 Crystal oscillator and control circuit thereof
US10483913B2 (en) * 2017-07-13 2019-11-19 Qualcomm Incorporated Low power crystal oscillator
US10432143B2 (en) * 2017-12-25 2019-10-01 Shenzhen GOODIX Technology Co., Ltd. Circuit and method for facilitating startup time of crystal oscillator
JP7003652B2 (en) * 2017-12-27 2022-01-20 セイコーエプソン株式会社 Oscillators, clock signal generators, electronic devices and mobiles
CN108828356B (en) * 2018-06-11 2024-08-13 南京尤尼泰信息科技有限公司 Power supply test circuit suitable for multiple specification crystal oscillator
GB201810227D0 (en) * 2018-06-21 2018-08-08 Nordic Semiconductor Asa Oscillator circuits
KR102557999B1 (en) 2018-07-13 2023-07-20 삼성전자주식회사 Crystal oscillator comprising feedback circuit and reference clock generating circuit comprising the same
CN109613323B (en) * 2018-10-30 2021-04-13 北京时代民芯科技有限公司 A programmable signal amplitude detection circuit
CN109756191B (en) * 2018-11-22 2023-04-28 合肥市芯海电子科技有限公司 Low-power-consumption crystal oscillator circuit with pseudo-differential structure
US10819279B1 (en) * 2019-06-28 2020-10-27 Nxp Usa, Inc. Low power crystal oscillator
US11309835B2 (en) * 2020-08-26 2022-04-19 Mediatek Inc. Crystal oscillator and phase noise reduction method thereof
US11342884B2 (en) 2020-08-26 2022-05-24 Mediatek Inc. Crystal oscillator and phase noise reduction method thereof
KR102883419B1 (en) 2020-09-18 2025-11-06 삼성전자주식회사 Crystal oscillator reducing phase noise and semiconductor chip comprising the same
US12362705B2 (en) 2021-05-12 2025-07-15 Nordic Semiconductor Asa Oscillator regulation
CN117040498B (en) * 2023-10-08 2024-01-26 成都明夷电子科技有限公司 A variable duty cycle clock generation circuit and electronic device
US12542516B2 (en) * 2024-04-10 2026-02-03 Silicon Laboratories Inc. Crystal oscillator energy injection
CN121461891B (en) * 2026-01-05 2026-04-03 爱科微科技(上海)股份有限公司 Cookitz crystal oscillator amplitude detection device and detection and calibration method thereof

Family Cites Families (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5293257A (en) 1976-01-30 1977-08-05 Toshiba Corp Oscillator
JPS54151358A (en) 1978-05-19 1979-11-28 Seikosha Kk Crystal oscillating circuit
JPS59114908A (en) 1982-12-21 1984-07-03 Nec Corp Integrated circuit device having oscillating circuit
GB2152312B (en) 1983-11-01 1987-04-23 Motorola Inc Oscillator circuit
JPH07297641A (en) 1994-04-25 1995-11-10 Okuma Mach Works Ltd Clock oscillator
JP3543542B2 (en) 1997-05-23 2004-07-14 セイコーエプソン株式会社 Oscillation circuit, electronic circuit using the same, semiconductor device using the same, electronic apparatus, and clock
JP2000091864A (en) * 1998-09-16 2000-03-31 Matsushita Electric Ind Co Ltd Automatic gain control circuit, receiving apparatus including the circuit, automatic gain control method in receiving apparatus, and recording medium
DE19856932A1 (en) 1998-12-10 2000-06-15 Bosch Gmbh Robert Distortion-damped oscillator circuit
JP2000183652A (en) 1998-12-14 2000-06-30 Toshiba Microelectronics Corp Oscillator circuit
US6664865B2 (en) 2001-05-11 2003-12-16 Sequoia Communications Amplitude-adjustable oscillator
US6798301B1 (en) 2001-06-11 2004-09-28 Lsi Logic Corporation Method and apparatus for controlling oscillation amplitude and oscillation frequency of crystal oscillator
US6819196B2 (en) * 2003-02-13 2004-11-16 Standard Microsystems Corporation Crystal oscillator with control feedback to maintain oscillation
CN1826725A (en) 2003-07-22 2006-08-30 皇家飞利浦电子股份有限公司 Precision Tuningless Crystal Oscillator
EP1638203A1 (en) * 2004-09-21 2006-03-22 Dialog Semiconductor GmbH Oscillator with controlled duty cycle
US7292114B2 (en) 2005-08-01 2007-11-06 Marvell World Trade Ltd. Low-noise high-stability crystal oscillator

Also Published As

Publication number Publication date
CN1909360B (en) 2012-05-02
US7292114B2 (en) 2007-11-06
US20070024385A1 (en) 2007-02-01
EP1753126B1 (en) 2011-10-05
SG129423A1 (en) 2007-02-26
TWI328339B (en) 2010-08-01
JP2007043705A (en) 2007-02-15
JP2009225469A (en) 2009-10-01
JP4392007B2 (en) 2009-12-24
US7839228B2 (en) 2010-11-23
CN1909360A (en) 2007-02-07
EP1753126A1 (en) 2007-02-14
US20080122549A1 (en) 2008-05-29
CN102611433A (en) 2012-07-25
WO2007016604A3 (en) 2008-02-14
CN102611433B (en) 2016-03-02
TW200729695A (en) 2007-08-01

Similar Documents

Publication Publication Date Title
EP1753126B1 (en) Low-noise high-stability crystal oscillator
US6909336B1 (en) Discrete-time amplitude control of voltage-controlled oscillator
US20110128062A1 (en) Low-Noise Fine-Frequency Tuning
JP5823541B2 (en) Coarse tuning bank switch and temperature compensation circuit in low phase noise VCO
US7567140B2 (en) Voltage controlled oscillator having a bandwidth adjusted amplitude control loop
US20110037527A1 (en) Fast start-up crystal oscillator
CN102868362B (en) Temperature compensation circuit and synthesizer
JP2004007588A (en) Phase locked loop circuit and semiconductor integrated circuit device
JP3921362B2 (en) Temperature compensated crystal oscillator
JP2008306331A (en) Semiconductor integrated circuit device
US20060022744A1 (en) Biasing circuit and voltage control oscillator thereof
US7362192B1 (en) Low noise voltage-controlled oscillator
WO2007016626A2 (en) Low-noise fine-frequency tuning
JPWO2006095502A1 (en) Voltage controlled oscillator and frequency control method for voltage controlled oscillator
US7564316B2 (en) Variable-frequency oscillator incorporating thin-film bulk acoustic resonators
JP2007158882A (en) Voltage controlled oscillator
US7486154B1 (en) Flicker noise degeneration technique for VCO
JP2003198250A (en) Oscillation circuit and electronic device using the same
HK1103481A (en) Low-noise high-stability crystal oscillator
CN101263653B (en) Analog varactor
JP4428124B2 (en) Temperature compensated oscillator
JP2006060687A (en) Oscillator circuit
CN111162736A (en) Voltage controlled oscillator
JP2005347817A (en) PLL circuit
US20060012420A1 (en) Biasing circuit and voltage control oscillator thereof

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application
NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 06800639

Country of ref document: EP

Kind code of ref document: A2