WO2022246715A1 - 集成光源和控制非门光量子计算芯片及采用其的教学系统 - Google Patents
集成光源和控制非门光量子计算芯片及采用其的教学系统 Download PDFInfo
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- WO2022246715A1 WO2022246715A1 PCT/CN2021/096200 CN2021096200W WO2022246715A1 WO 2022246715 A1 WO2022246715 A1 WO 2022246715A1 CN 2021096200 W CN2021096200 W CN 2021096200W WO 2022246715 A1 WO2022246715 A1 WO 2022246715A1
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06E—OPTICAL COMPUTING DEVICES
- G06E3/00—Devices not provided for in group G06E1/00, e.g. for processing analogue or hybrid data
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06N—COMPUTING ARRANGEMENTS BASED ON SPECIFIC COMPUTATIONAL MODELS
- G06N10/00—Quantum computing, i.e. information processing based on quantum-mechanical phenomena
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- G09B—EDUCATIONAL OR DEMONSTRATION APPLIANCES; APPLIANCES FOR TEACHING, OR COMMUNICATING WITH, THE BLIND, DEAF OR MUTE; MODELS; PLANETARIA; GLOBES; MAPS; DIAGRAMS
- G09B23/00—Models for scientific, medical, or mathematical purposes, e.g. full-sized devices for demonstration purposes
- G09B23/06—Models for scientific, medical, or mathematical purposes, e.g. full-sized devices for demonstration purposes for physics
- G09B23/22—Models for scientific, medical, or mathematical purposes, e.g. full-sized devices for demonstration purposes for physics for optics
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- the disclosure relates to the field of quantum computing and quantum optics technology, and relates to the design of various optical quantum computing control NOT gate chips, in particular to an optical quantum computing chip with integrated light source and control NOT gate (CNOT) and a teaching system using it, which is suitable for optical quantum computing , teaching experiments and other application fields.
- CNOT integrated light source and control NOT gate
- Photons have the advantages of fast operation speed, simple and precise single-bit manipulation, and strong anti-noise ability, and can provide a quantum interface between remote atoms and solid-state quantum systems.
- the realization of large-scale optical quantum computing and simulation will solve some computing problems that classical computers are not capable of, and will have a profound impact on human society.
- many large high-tech companies have strongly intervened in quantum computing, which has greatly promoted the development of this field. Therefore, the cultivation of talents in this direction also needs to be trained as early as possible at the university level.
- universities due to the integration of many disciplines, expensive research equipment, and shortage of technical personnel, universities currently lack professional equipment for quantum computing experiments. Therefore, it is very necessary and urgent to design some quantum computing teaching systems.
- Optical quantum logic gates have already been realized under various schemes. For example, non-deterministic control phase gates can be realized by relying on fully linear optical devices, single photon sources and photon detectors, and the success rate can be improved through quantum teleportation. , but consumes a lot of device resources and requires very high device precision;
- the present disclosure provides an optical quantum computing chip integrating a light source and a control NOT gate and a teaching system using the same, in order to at least partly solve the above technical problems.
- an optical quantum computing chip integrating a light source and a control NOT gate
- the chip includes a coherent excitation light source, a single-bit gate, a control NOT gate circuit and a detection module;
- the coherent excitation light source emits two photons, prepares any single-bit state photons through the two single-bit gates, and inputs them into the control NOT gate circuit, and is detected by the detection module after passing through the control NOT gate circuit .
- the chip integrates the coherent excitation light source, the single-bit gate and the control NOT gate circuit, or integrates the coherent excitation light source, the single-bit gate, the control NOT gate circuit and the detection module on the semiconductor chip.
- the coherent excitation light source adopts a silicon waveguide structure, a silicon nitride microcavity structure or a periodically poled lithium niobate waveguide structure.
- the periodically polarized lithium niobate material absorbs two photons with a frequency of , and emits signal light and idler light with a frequency of and respectively; two light sources are used to generate 2 pairs of photons, and one photon in each pair of photons will directly Send it into the detection module as a single photon forecast; and two photons with the same frequency will be sent into the circuit to realize the operation of the control NOT gate.
- the single-bit gate and the control NOT gate circuit jointly form an optical quantum logic gate.
- control NOT gate circuit includes a beam splitter and a phase shifter, and the splitting ratio of the beam splitter and the phase of the phase shifter need to be adjusted arbitrarily, so as to realize unitary transformation.
- the change of the displacement of the phase shifter is realized by locally changing the temperature of the phase shifter in the waveguide to control the refractive index of the waveguide; the beam splitting ratio of the beam splitter is changed by a Mach-Zehnder interferometer.
- the detection module includes an integrated superconducting nanowire single photon detector or a photon number detector connected to an optical fiber outside the chip through a grating coupler.
- a teaching system which includes the optical quantum computing chip as described above.
- the teaching system also includes a teaching control system, and the teaching control system is used to control the phase shift of the phase shifter in the control NOT gate circuit.
- FIG. 1 is a schematic diagram illustrating the coupling of a coherent excitation light source, a control NOT gate circuit, a single photon detection module and a control system according to an embodiment of the present disclosure
- FIG. 2 illustrates the principle of the four-wave mixing process and a schematic diagram of a silicon-based predictive single photon source according to an embodiment of the present disclosure
- Fig. 3 illustrates a single-photon bit gate of path encoding and a schematic diagram of a single-bit gate implemented by a beam splitter and a phase shifter according to an embodiment of the present disclosure
- FIG. 4 illustrates a schematic circuit diagram of a Mach-Zehnder interferometer according to an embodiment of the present disclosure
- FIG. 5 illustrates a schematic diagram of a control NOT gate and a circuit diagram of a control NOT gate according to an embodiment of the present disclosure
- FIG. 6 illustrates a schematic diagram of an integrated superconducting nanowire single photon detector and an external single photon detector according to an embodiment of the present disclosure
- FIG. 7 illustrates a teaching system for controlling a NOT gate chip based on a silicon waveguide forecasting single photon source according to an embodiment of the present disclosure
- FIG. 8 illustrates a teaching system for controlling a NOT gate chip based on a silicon nitride microcavity forecasting single photon source according to an embodiment of the present disclosure
- Figure 9 illustrates the spontaneous parametric down-conversion process and the schematic diagram of the periodically poled lithium niobate waveguide
- FIG. 10 schematically illustrates a teaching system for controlling a NOT gate chip based on a periodically polarized lithium niobate waveguide predicting a single photon source according to an embodiment of the present disclosure.
- the schematic diagram of the overall structure of the control NOT gate chip teaching system designed in this design is shown in Figure 1.
- the coherent excitation light source emits two photons prepared to the path code
- the single photon detection module After passing through the control NOT gate, the single photon detection module detects, and the phase shift of the phase shifter in the control NOT gate circuit can be controlled by the control system.
- the light source part can be realized through four-wave mixing or parametric down-conversion process shown in FIG. 2 .
- Universal quantum logic gates can be realized by arbitrary single-bit gates and controlled NOT gates (C-NOTs). As shown in Figure 3, the photon bits are coded on two paths.
- the splitting ratio of the beam splitter and the phase of the phase shifter can be adjusted arbitrarily.
- the phase change is achieved by controlling the refractive index of the waveguide by locally changing the temperature of the phase shifter in the waveguide.
- the splitting ratio of the beam splitter is changed by a Mach Zehnder Interferometer (MZI).
- the interferometer includes two 50:50 beam splitters, one of the interference arms is equipped with Au/Ti heating electrodes, after the current is passed, the phase between the two paths of the interferometer will change, so that Change the light intensity of the output port to achieve the purpose of adjustable beam splitting ratio.
- the phase shifter is equivalent to the Rz single-bit gate
- the Mach-Zehnder interferometer is equivalent to the Ry single-bit gate, so the structure in Figure 3(ii) can realize any single-bit gate operation on a single photon bit.
- Figure 5(i) is the integrated optical path connection for realizing the controlled NOT gate (CNOT), and Figure 5(ii) is the schematic diagram of the optical path for realizing the controlled NOT gate, in which the reflective splitting ratio of the three beam splitters is 1/3, and the two The reflective splitting ratio of each beam splitter is 1/2.
- a Mach-Zehnder interferometer is also used to realize the beam splitter with adjustable beam splitting ratio. The actual optical path is shown in Fig. 5(iii).
- the control of the input state of the CNOT line can be realized through single-bit unitary transformation.
- the two outputs of CNOT line c and t can be detected by an integrated superconducting nanowire single photon detector, or can be connected to an off-chip photon number detector through a grating coupler.
- the CNOT operation is successful, and the success probability is 1/9.
- the detector is connected with an electronic control device, which can display whether the CNOT operation is successful and perform subsequent output and counting.
- the present disclosure provides silicon-based, Si3N4 and laser direct writing lithium niobate integrated CNOT chips based on traditional CMOS technology.
- the chip integrates the light source and circuit part, or integrates all the light source, circuit and detection part on the semiconductor chip.
- the light source part can be realized by various materials.
- This patent provides the use of Si or Si3N4 microcavities or waveguides to provide single photons through the process of four-wave mixing. As shown in Fig. 2(i), the material absorbs two photons with frequency ⁇ 0 and emits signal light and idler light with frequencies ⁇ 1 and ⁇ 2 , respectively. Since two light sources are used, the light source can generate 2 pairs of photons.
- Figure 2(ii) shows part of the waveguide-based light source.
- the input and output of the light source are coupled by a grating.
- This light source design is suitable for silicon-based waveguides.
- a better design is a four-wave mixing light source based on a silicon or silicon nitride microring cavity. This design can naturally achieve phase matching conditions, and the photon coherence length can reach millimeter or even centimeter level.
- the pump light input is coupled into the two-mode waveguide by a 50:50 beam splitter, and the purity of the outgoing photon can be improved by adding an appropriate phase delay to the low-order mode; the ring structure is to save space and increase the purity of the outgoing photon and conversion efficiency, and the outgoing photons are directly coupled into the waveguide.
- a source that coherently excites multiple such structures can preserve high photon indistinguishability.
- the redundant excitation light is exported to the chip by the directional coupler and the waveguide to avoid affecting the stability of the whole chip.
- the efficiency itself is extremely high.
- one of our methods is to couple the generated photons into a single-mode fiber (or multi-mode fiber) through a waveguide, and the prediction efficiency can be as high as 80%.
- Another method is to directly grow superconducting nanowire single photon detectors on the chip. The entire chip operates at a temperature of ⁇ 2K, and the predicted efficiency can reach more than 95%.
- Periodically poled lithium niobate materials can undergo quasi-phase-matched second-order spontaneous parametric down-conversion nonlinear processes. Since the second-order nonlinear coefficients are usually much higher than the third-order nonlinear coefficients, this process is more complex than the third-order spontaneous four-wave mixing. The frequency process is more likely to occur, and the compressed vacuum state of materials such as silicon base and silicon nitride can be obtained under the same pump laser power. Through the second-order spontaneous parametric down-conversion process, the periodically poled lithium niobate waveguide can be fabricated into a single-photon source with high predictive efficiency, high purity, and high inresolution. As shown in Fig.
- Lithium niobate is a ferroelectric crystal, and the orientation of the electric dipole moment of each unit cell depends on the position of niobium and lithium ions in the unit.
- the crystal structure can be reversed by a strong electric field, so that periodically arranged poled lithium niobate crystals can be made.
- the periodic lithium niobate waveguide is shown in Fig. 9(ii).
- This design achieves a high-efficiency predictive single-photon source through spontaneous parametric down-conversion in a periodically poled lithium niobate waveguide.
- the integrated quantum circuit based on the periodic lithium niobate waveguide prediction single photon source is shown in Figure 10.
- Embodiment 1 of the present disclosure a silicon light source-based teaching system for an integrated miniaturized optical quantum control NOT gate chip is provided. , single photon detector module and teaching control system, which can be applied to the demonstration teaching of optical quantum control NOT gate, the teaching demonstration of Bell state preparation and inspection.
- FIG. 1 it includes two predictive single-photon sources for coherent excitation, two single-bit gate circuits for preparing CNOT gate inputs, CNOT gate circuits and a single-photon detection and control system.
- the pumping pulsed laser passes through the beam splitter and coherently excites two silicon waveguide prediction single photon sources, and the signal is generated through the third-order nonlinear four-wave mixing process in the silicon waveguide
- Light and idler photon pairs are input and forecast photons as CNOT lines. Redundant background excitation light is guided out of the chip by a waveguide to avoid noise effects.
- Figure 2(i) shows the four-wave mixing process
- Figure 2(ii) shows the silicon waveguide predicting the single photon source.
- the photon state output by the light source is the
- a single-bit control gate needs to be inserted between the light source and the CNOT input port, as shown in Figure 3(i) . It can be shown that the phase shifter can impose an Rz rotation operation on the single photon path encoded bits,
- U p represents the unitary transformation of the photon bit by the phase shifter
- ⁇ 1 represents the phase shift of the upper path of the photon relative to the lower path by the phase shifter
- R z (- ⁇ 1 ) is the qubit rotation operator, so that the qubit Rotate - ⁇ 1 degree around the Z axis on the Bloch sphere.
- the Mach-Zehnder interferometer can apply a Ry rotation operation to the single-photon path encoded bits
- U m represents the unitary transformation of the photon bit by the Mach-Zehnder interferometer
- ⁇ 2 represents the phase shift of the upper path of the photon relative to the lower path by the phase shifter in the Mach-Zehnder interferometer
- R y ( ⁇ 2 ) is the qubit The rotation operator makes the qubit rotate ⁇ 2 degrees around the Y axis on the Bloch sphere.
- the photon path encoding bits can be prepared to any state via the circuit shown in Fig. 3(ii).
- the Mach-Zehnder interferometer is shown in Figure 4.
- control NOT gate is composed of three splitters with a splitting ratio of 1/3 and two splitters with a splitting ratio of 1/2, when the control bit (control When the bit) output port c and the target bit output port receive a photon signal at the same time, the control NOT gate operation is successful, and the counting control system records the count; otherwise, the control NOT gate operation fails and the count is discarded.
- the single-photon detector can be composed of a superconducting nanowire single-photon detector directly integrated into the chip, or it can be coupled into an optical fiber through a grating coupler and connected to an off-chip single-photon detector for detection.
- Fig. 6(i) is a schematic diagram of a superconducting nanowire single-photon detector
- Fig. 6(ii) is a schematic diagram of an off-chip single-photon detector.
- the coherent excitation light source, the CNOT operation circuit, and the single photon detector are connected as shown in the figure. Adjust and control the splitting ratio of each beam splitter in the NOT gate line, and change the input state of the CNOT gate line by changing the phase shift of each phase shifter in the single-bit gate line, observe the count of the output port, and carry out the demonstration operation teaching experiment of the CNOT gate.
- the light source part uses a silicon nitride microcavity structure, and a four-wave mixing process occurs in the microcavity to generate signal photons and idler photon pairs, which are used as CNOT gate input and forecast photons.
- the silicon nitride microcavity light source for coherent excitation, the CNOT gate circuit and the single photon detection module are connected as shown in the figure. Adjust and control the splitting ratio of each beam splitter in the NOT gate circuit, and change the input state of the CNOT gate circuit by changing the phase shift of each phase shifter in the single-bit gate circuit, observe the photon count at the output port, and carry out the demonstration teaching experiment of the CNOT gate circuit.
- the detectors can also be classified into on-chip integrated type or externally connected type.
- the light source part uses a periodically poled lithium niobate waveguide structure.
- the periodically poled lithium niobate waveguide In the periodically poled lithium niobate waveguide, quasi-phase-matched second-order nonlinear spontaneous parameters will occur.
- the conversion process as shown in Fig. 9(i), the photon with frequency ⁇ 0 is transformed into signal light and idler light of ⁇ 1 and ⁇ 2 through the spontaneous parametric down-conversion process, which are used as the input photon and forecast photon of the CNOT gate circuit.
- Lithium niobate is a ferroelectric crystal, and the orientation of the electric dipole moment of each unit cell depends on the position of niobium and lithium ions in the unit. The crystal structure can be reversed by a strong electric field, so that periodically arranged poled lithium niobate crystals can be made.
- the periodic lithium niobate waveguide is shown in Fig. 9(ii).
- the coherently excited periodically polarized lithium niobate waveguide forecast light source, the CNOT gate circuit and the single photon detection module are connected as shown in FIG. 10 .
- FIG. 2 only show an equivalent single-bit quantum logic gate circuit, and the number and connection mode of the Mach-Zehnder interferometer and phase shifter are not limited to this embodiment, that is, the preparation of the input state of the CNOT gate circuit Single-bit gates are not limited to this embodiment.
- the multi-mode optical quantum logic gate circuit of the present disclosure has the feature of full connectivity of all modes, that is, it can realize interference among all modes.
- the optical quantum computing chip with integrated light source and control NOT gate and the teaching system using it have at least one of the following beneficial effects:
- the present disclosure can avoid complex four-wave mixing frequency degeneracy through on-chip integration of light sources and control NOT gates.
- the on-chip integration approach has the advantages of high integration, stable working conditions, and low cost.
- this optical quantum chip can achieve lower optical loss
- each light-receiving coupler can have close to the same coupling collection efficiency
- the output of the CNOT gate is connected to the photon number detector, combined with the input end to connect the light source and the single-bit gate, the demonstration operation experiment of the CNOT gate and the entanglement state preparation and inspection experiment can be realized;
- the photon number non-destructive detector is connected through the CNOT gate output terminal, and can be connected according to specific needs to realize the programmable universal quantum computing chip;
- the operation of the CNOT gate can be canceled by adjusting the reflective splitting ratio of the beam splitter to 1, which increases the programmability of the chip after etching.
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Abstract
Description
Claims (10)
- 一种集成光源和控制非门的光量子计算芯片,所述芯片包括相干激发光源、单比特门、控制非门线路和探测模块;其中,所述相干激发光源发射两个光子,通过两个所述单比特门制备任意单比特态光子,输入到所述控制非门线路中,经过所述控制非门线路后由所述探测模块进行探测。
- 根据权利要求1所述的光量子计算芯片,所述芯片将相干激发光源、单比特门和控制非门线路部分进行集成,或将相干激发光源、单比特门、控制非门线路和探测模块全部集成在半导体芯片上。
- 根据权利要求1所述的光量子计算芯片,所述相干激发光源采用硅波导结构、氮化硅微腔结构或周期性极化铌酸锂波导结构。
- 根据权利要求3所述的光量子计算芯片,周期性极化铌酸锂材料吸收两个频率为ω 0的光子,发射频率分别为ω 1和ω 2的信号光和闲频光;采用两个光源进而产生2对光子,每对光子中的一个光子会直接送入探测模块,作为预报单光子;而频率相同的两个光子会被送入线路实现控制非门的操作。
- 根据权利要求1所述的光量子计算芯片,所述单比特门和所述控制非门线路共同形成光量子逻辑门。
- 根据权利要求1所述的光量子计算芯片,所述控制非门线路包括分束器和移相器,分束器的分束比和移相器的相位需要任意可调,以用于实现么正变换。
- 根据权利要求6所述的光量子计算芯片,所述移相器的位移的改变是通过局部改变波导中的移相器温度控制波导折射率来实现的;所述分束器的分束比是通过马赫曾德干涉仪来改变的。
- 根据权利要求1所述的光量子计算芯片,所述探测模块包括集成的超导纳米线单光子探测器或通过光栅耦合器连接光纤到片外的光子数探测器。
- 一种教学系统,包括如权利要求1-8任一项所述的光量子计算芯片。
- 根据权利要求9所述的教学系统,所述教学系统还包括教学控制系统,所述教学控制系统用于控制所述控制非门线路中移相器的相移。
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| CN116295822A (zh) * | 2023-01-16 | 2023-06-23 | 电子科技大学 | 一种混合集成的和频上转换红外单光子探测器件 |
| RU2814969C1 (ru) * | 2023-04-06 | 2024-03-07 | Российская Федерация, от имени которой выступает ФОНД ПЕРСПЕКТИВНЫХ ИССЛЕДОВАНИЙ | Система и способ решения прикладных задач материаловедения с помощью сопряжения квантовых и классических устройств |
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Cited By (2)
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| CN116295822A (zh) * | 2023-01-16 | 2023-06-23 | 电子科技大学 | 一种混合集成的和频上转换红外单光子探测器件 |
| RU2814969C1 (ru) * | 2023-04-06 | 2024-03-07 | Российская Федерация, от имени которой выступает ФОНД ПЕРСПЕКТИВНЫХ ИССЛЕДОВАНИЙ | Система и способ решения прикладных задач материаловедения с помощью сопряжения квантовых и классических устройств |
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