CN1604385A - High-temperature superconducting microwave resonator with adjustable frequency - Google Patents
High-temperature superconducting microwave resonator with adjustable frequency Download PDFInfo
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- CN1604385A CN1604385A CN 200410067816 CN200410067816A CN1604385A CN 1604385 A CN1604385 A CN 1604385A CN 200410067816 CN200410067816 CN 200410067816 CN 200410067816 A CN200410067816 A CN 200410067816A CN 1604385 A CN1604385 A CN 1604385A
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- open loop
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- josephson junction
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Abstract
This invention relates to a frequency-adjustable high temperature superconduct microwave resonator, which is to directly couple a ring resonator and two low inductance-adjusting open loops distributing as catercorner, wherein, the two loops forms two adjusting circuit. Through changing the current of the open loops and the couple between the loops and resonator, it changes the equivalent inductance of the ring resonator to achieve the frequency adjusting.
Description
Technical field
The present invention relates to a kind of high-temperature superconducting microwave resonator with adjustable frequency, is that a kind of Josephson junction equivalence nonlinear inductance that uses changes the microwave passive component that realizes frequency adjustment with impressed current, belongs to electronic technology field.
Background technology
Adjustable microwave passive device (as resonator) has important use in microwave technical field and is worth, because: (1) flexibility commercial and military radio frequency applications requires microwave passive component to have the adjustability of high speed, high Q value, wide region; (2) tunable characteristic can remedy the error of design; (3) can solve because variation of temperature causes the variation of structural parameters, cause the problem of device frequency drift.
A primary application of thin-film high temperature superconductor is exactly a passive device, and one of reason is that passive device is fairly simple comparatively speaking.Utilize high temperature superconducting film to be deposited on the suitable substrate, microwave passive component is processing and fabricating at an easy rate.Another reason is the premium properties that microwave passive component can make full use of high temperature superconducting materia, as low surface resistance R
SThe low insertion loss or the high Q value that can cause passive device.Under microwave frequency, the Q value of high-temperature superconductor resonator exceeds tens of times to hundreds of times than conventional conductor resonator.
Frequency adjustable high-temperature superconductor microwave passive resonance device is one of superconductor important application in passive device.In order to regulate resonance frequency, require to change the inductance or the electric capacity of resonator.In recent years, adjustable high-temperature superconductor passive device has adopted several frequency adjustment or has changed the method for device inductance, electric capacity, comprises the dielectric constant that changes medium, to change electric capacity; Heat to change the dynamic inductance of superconducting transmission line element itself by injection current or light; The magnetic susceptibility that changes medium is to change inductance; Change London penetration depth by heating superconduction resonant element, to change dynamic inductance etc.Yet all these methods need bigger control energy, and speed is slow, and undesirable unsteadiness can occur when operating near the superconduction critical temperature, have also increased radio frequency loss simultaneously.Also has the single quantum interference equipment of successful Application in addition or along the distribute method of some quantum interference equipment components that are coupled with microstrip line of microstrip line.The quantum interference device, method has low control energy, the low radio frequency loss, and the advantage of quick control, but need satisfy exacting terms to reach the single-valued relationship of magnetic flux phi and electric current I, this will not have back the quantum interference equipment that stagnates to manufacturing and will bring difficulty.
Summary of the invention
The objective of the invention is at the deficiencies in the prior art, a kind of high-temperature superconducting microwave resonator with adjustable frequency is provided, simple in structure, required control energy is low, and it is low to have radio frequency loss, advantages such as tuned speed is fast, good stability.
For reaching this purpose, the character that the present invention utilizes the equivalent nonlinear inductance of Josephson junction to change with electric current reaches the resonance frequency of resonator and regulates.The low adjustment of inductance open loop of an annulus resonator and two diagonal distributions directly is coupled, in two low adjustment of inductance open loops a Josephson junction is arranged respectively, and link to each other with a current source respectively, constitute two regulating circuits.The inductance of open loop and Josephson junction equivalent inductance are in same order.
The electric current that changes current source is promptly regulated the electric current of open loop, the equivalent nonlinear inductance of Josephson junction also changes thereupon in the open loop, pass through the coupling of two open loops and annulus resonator then, the equivalent inductance of whole resonator is changed, thereby resonance frequency is also corresponding changes, and finally reaches the purpose of frequency adjustment.
Resonance frequency adjustable range of the present invention is:
Wherein
K is the coupling coefficient between annulus resonator and the adjusting open loop, L
JFor adding the Josephson junction equivalent inductance behind the open-loop current, L is for regulating open loop inductance, C
TBe annulus resonator equal set total capacitance, L
JoThe equivalent inductance of the Josephson junction when not having open-loop current.
It is high that resonator of the present invention has the Q value, and the control energy that needs is low, and radio frequency loss is low, stable fast, the simple relatively and advantage such as manufacturing easily of structure.
Description of drawings
Fig. 1 is a high-temperature superconducting microwave resonator with adjustable frequency structural representation of the present invention.
Among Fig. 1,1 is the annulus resonator, and 2 for regulating open loop, and 3 is Josephson junction, and the open loop mouth distance of regulating open loop 2 is g.
Fig. 2 is the sectional view of high-temperature superconducting microwave resonator with adjustable frequency of the present invention.
Among Fig. 2,1 is the annulus resonator, and 4 is ground plate, and 5 is substrate.
Fig. 3 is for having the adjusting open loop structure figure of a Josephson junction in the resonator.
Among Fig. 3,3 is Josephson junction, and 6 is current source, and the internal diameter of regulating open loop is D.
Fig. 4 is annulus resonator and an equivalent electric circuit of regulating the open loop coupling.
Among Fig. 4, L
JBe the equivalent inductance of Josephson junction 3, L
TBe the equal set total inductance of annulus resonator 1, L is for regulating the inductance of open loop 2, C
TBe the equal set total capacitance of annulus resonator 1, k is the inductive coupling coefficient between annulus resonator 1 and the adjusting open loop 2.
When Fig. 5 is coupling coefficient k=0.6619
With flow through the open loop DC I that has Josephson junction
oRelation curve.
Embodiment
Below in conjunction with accompanying drawing technical scheme of the present invention is further described.
High-temperature superconducting microwave resonator with adjustable frequency structure of the present invention as shown in Figure 1, the low adjustment of inductance open loop 2 that is distributed by an annulus resonator 1 and two diagonal directly coupling constitutes, regulating in the open loops for two has a Josephson junction 3 respectively.The cross section structure of microwave resonator has substrate 5 as shown in Figure 2 on ground plate 4, annulus resonator 1 is arranged on the substrate 5.Have a Josephson junction 3 adjusting open loop 2 structure as shown in Figure 3, the open loop mouth of regulating open loop 2 connects a current source 6, constitutes a regulating circuit, energized then has an electric current I in adjusting open loop 2.
High-temperature superconducting microwave resonator with adjustable frequency of the present invention directly is coupled the low adjustment of inductance open loop 2 of an annulus resonator 1 and two diagonal distributions, regulating open loop 2 for two links to each other with a current source 6 respectively, constitute two regulating circuits, utilize the equivalent inductance of Josephson junction that the dependence of electric current is regulated resonance frequency.Regulating the inductance of open loop 2 and the equivalent electric of Josephson junction 3 responds in same order.
The interior outer radius of annulus resonator is respectively R
lAnd R
o, the aperture of regulating open loop is D, and the thickness of the open loop of annulus resonator, ground plate and regulating circuit is t, and the thickness of substrate is H.The direct-coupled equivalent electric circuit of open loop that annulus resonator and one of them have Josephson junction is shown in Fig. 4, wherein, and L
J, L
TWith L be respectively the Josephson junction equivalent inductance, annulus resonator equal set total inductance and regulate open loop inductance, C
TBe annulus resonator equal set total capacitance, k is the coupling coefficient of annulus resonator and one of them adjusting open loop.
Be two adjusting open loop 2 couplings of k when annulus resonator 1 and coupling coefficient after, the inductance L of annulus resonator 1
TBecome:
When working in small-signal, the equivalent inductance L of Josephson junction 3
JFor:
Flux quantum Φ in the formula
o=2.07 * 10
-15Wb, I
cBe the critical current of Josephson junction 3, I
oBe to flow through the direct current of regulating open loop 2 from DC current source 6.The resonance frequency of whole resonator system is:
Regulate the direct current I of open loop 2 as can be known by change from (2)
0, can change the equivalent inductance L of Josephson junction 3
J, and then change the equivalent inductance of annulus resonator 1 by (1) formula
Reach the purpose of regulating resonance frequency f by (3) formula at last.
The resonance frequency adjustable range is:
Wherein
L wherein
JoBe the equivalent inductance of Josephson junction 3 when not having open-loop current, and
Embodiment:
The parameter of annulus resonator 1: external diameter is R
o=3.5mm, internal diameter are R
l=3mm, the thickness t of conductor=0.35 μ m, resonance frequency is f
1=3.75Ghz, characteristic impedance is Z
o=32.66 Ω.Backing material is LaAlO
3(LAO) monocrystalline, relative dielectric constant are ε
r=23.6, substrate thickness H=0.5mm.When
Wherein λ is a London penetration depth, and the effective dielectric constant during 77K is calculated as
Loss tangent is tan δ~10
-5The external diameter of the adjusting open loop 2 of regulating circuit is r
o=0.9mm, aperture D=0.03mm, t=0.35 μ m, the slit g=5 μ m of ring, the critical current I of Josephson junction 3
c=800 μ A.
The coupling coefficient k that annulus resonator 1 and adjusting open loop are 2 is a key parameter to the adjusting that realizes frequency.It is strong more to be coupled, and adjustable range is big more.Getting coupling coefficient by emulation is k=0.6619.
This annulus resonant frequency adjustable range and the direct current I that passes through to regulate open loop
oRelation curve such as Fig. 5.As the direct current I that regulates open loop
oDuring=798 μ A, the adjustable range of resonance frequency is 18%.
The present invention is the open loop that utilizes the band Josephson junction, is not subjected to the influence of flux quantum transition, and circuit is unrestricted.Under the small-signal situation, induce interchange very little in the Josephson junction, all electric currents are to flow through the perception knot under zero the situation at junction voltage, although the resistance that has normal electron tunnel to bring, the radio frequency loss of system is still very little.So as long as the critical current of Josephson junction is enough big, the loss of regulating loop is little, and the Q value of system can be accepted.
Claims (2)
1, a kind of high-temperature superconducting microwave resonator with adjustable frequency, it is characterized in that by an annulus resonator (1) and two directly coupling formations of low adjustment of inductance open loop (2) that diagonal distributes, regulate in the open loop (2) for two a Josephson junction (3) is arranged respectively, regulating open loop (2) for two links to each other with a current source (6) respectively, constitute two regulating circuits, the inductance of adjusting open loop (2) and the equivalent inductance of Josephson junction (3) are in same order, change the equivalent inductance of Josephson junction (3) by electric current that change to regulate open loop (2), and then regulate resonance frequency by the equivalent inductance of regulating the coupling change annulus resonator (1) between open loop (2) and the annulus resonator (1).
2,, it is characterized in that described resonance frequency adjustable range is according to the high-temperature superconducting microwave resonator with adjustable frequency of claim 1:
Wherein
K is the coupling coefficient between annulus resonator (1) and the adjusting open loop (2), L
JFor adding the equivalent inductance of the Josephson junction (3) behind the open-loop current, L is for regulating the inductance of open loop (2), C
TBe the equal set total capacitance of annulus resonator (1), L
J0The equivalent inductance of the Josephson junction (3) when not having open-loop current.
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CN 200410067816 CN1279653C (en) | 2004-11-04 | 2004-11-04 | High-temperature superconducting microwave resonator with adjustable frequency |
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CN 200410067816 CN1279653C (en) | 2004-11-04 | 2004-11-04 | High-temperature superconducting microwave resonator with adjustable frequency |
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WO2018060981A1 (en) * | 2016-09-28 | 2018-04-05 | International Business Machines Corporation | Quantum limited josephson amplifier |
CN109784493A (en) * | 2018-11-19 | 2019-05-21 | 中国科学技术大学 | The adjustable superconductive quantum bit structure of adjacent bit stiffness of coupling |
CN109906552A (en) * | 2016-10-28 | 2019-06-18 | 国际商业机器公司 | Generate the compressive state of microwave field in microwave device |
CN110651329A (en) * | 2017-05-18 | 2020-01-03 | 国际商业机器公司 | Quantum bit network security identification |
CN111034041A (en) * | 2017-05-24 | 2020-04-17 | 安乐泰克有限公司 | Apparatus and method for controlling resonator |
CN111108687A (en) * | 2017-10-19 | 2020-05-05 | 国际商业机器公司 | Capacitive-shunted asymmetric DC SQUID for quantization readout and reset |
CN111180848A (en) * | 2020-02-19 | 2020-05-19 | 南京大学 | Device and method for realizing compact adjustable microwave resonator by NbN dynamic inductor |
CN113422184A (en) * | 2021-06-11 | 2021-09-21 | 西安电子科技大学 | Gain-adjustable radio frequency attenuation device based on split ring resonator |
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2004
- 2004-11-04 CN CN 200410067816 patent/CN1279653C/en not_active Expired - Fee Related
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GB2569489A (en) * | 2016-09-28 | 2019-06-19 | Ibm | Quantum limited Josephson amplifier |
US10141928B2 (en) | 2016-09-28 | 2018-11-27 | International Business Machines Corporation | Quantum limited josephson amplifier with spatial separation between spectrally degenerate signal and idler modes |
WO2018060981A1 (en) * | 2016-09-28 | 2018-04-05 | International Business Machines Corporation | Quantum limited josephson amplifier |
CN109906552B (en) * | 2016-10-28 | 2023-06-06 | 国际商业机器公司 | Generating a compression state of a microwave field in a microwave device |
CN109906552A (en) * | 2016-10-28 | 2019-06-18 | 国际商业机器公司 | Generate the compressive state of microwave field in microwave device |
CN110651329A (en) * | 2017-05-18 | 2020-01-03 | 国际商业机器公司 | Quantum bit network security identification |
CN111034041A (en) * | 2017-05-24 | 2020-04-17 | 安乐泰克有限公司 | Apparatus and method for controlling resonator |
CN111034041B (en) * | 2017-05-24 | 2023-10-31 | 安乐泰克有限公司 | Apparatus and method for controlling resonator |
CN111108687B (en) * | 2017-10-19 | 2023-06-23 | 国际商业机器公司 | Asymmetric DC SQUID for quantized read and reset capacitive shunting |
CN111108687A (en) * | 2017-10-19 | 2020-05-05 | 国际商业机器公司 | Capacitive-shunted asymmetric DC SQUID for quantization readout and reset |
CN109784493B (en) * | 2018-11-19 | 2022-10-28 | 中国科学技术大学 | Superconducting quantum bit structure with adjustable adjacent bit coupling strength |
CN109784493A (en) * | 2018-11-19 | 2019-05-21 | 中国科学技术大学 | The adjustable superconductive quantum bit structure of adjacent bit stiffness of coupling |
CN111180848A (en) * | 2020-02-19 | 2020-05-19 | 南京大学 | Device and method for realizing compact adjustable microwave resonator by NbN dynamic inductor |
CN111180848B (en) * | 2020-02-19 | 2024-04-30 | 南京大学 | Device and method for realizing compact adjustable microwave resonator by NbN dynamic inductance |
CN113422184A (en) * | 2021-06-11 | 2021-09-21 | 西安电子科技大学 | Gain-adjustable radio frequency attenuation device based on split ring resonator |
CN113422184B (en) * | 2021-06-11 | 2022-05-17 | 西安电子科技大学 | Gain-adjustable radio frequency attenuation device based on split ring resonator |
CN117891108A (en) * | 2024-03-18 | 2024-04-16 | 南京大学 | On-chip superconducting microwave frequency comb and preparation method thereof |
CN117891108B (en) * | 2024-03-18 | 2024-05-28 | 南京大学 | On-chip superconducting microwave frequency comb and preparation method thereof |
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