Quantum computing system with non-adiabatic single flux quantum (SFQ) readout for superconducting qubits
A quantum computing system with symmetric RF SQUID circuits and bias compensation for superconducting qubits addresses the limitations of classical computers by providing high-fidelity and sensitive qubit readout, suitable for complex computations.
Patent Information
- Application Number
- JP2023541484
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-15
- Filing Date
- 2021-09-15
- Publication Date
- 2026-03-05
- Estimated Expiration
- 2041-09-15
AI Technical Summary
Classical digital computers face limitations in performing highly complex computations, such as molecular modeling and cryptography, necessitating the development of quantum computing systems that can leverage quantum states of qubits for improved processing capabilities.
A quantum computing system utilizing superconducting qubits with symmetric RF SQUID circuits for qubit readout, incorporating bias circuits to maintain symmetry and reduce asymmetry, operates at cryogenic temperatures, and employs non-adiabatic SFQ pulses for phase-sensitive readout.
The system achieves enhanced readout fidelity and sensitivity, reducing backaction and noise, enabling fast and accurate quantum state measurements without destroying the qubit state, suitable for complex computations.
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Abstract
Description
[Technical Field]
[0001] (Priority claims and related patent applications) This patent document claims priority to and benefit of U.S. Provisional Patent Application No. 63 / 078,587, filed September 15, 2020, entitled "QUANTUM COMPUTING SYSTEMS WITH DIABATIC SINGLE FLUX QUANTUM (SFQ) READOUT FOR SUPERCONDUCTING QUANTUM BITS."
[0002] (Technical field) This patent document relates to a computing or information processing system that includes a quantum computing module that performs information processing or computation using quantum states of quantum mechanical devices or circuits. [Background technology]
[0003] (background) Classical digital computers, including general-purpose digital computers and high-performance digital supercomputers, perform computations based on Boolean logic. While Boolean logic-based computing techniques have revolutionized a wide range of industries and technologies over recent decades, they also exhibit certain limitations when performing highly complex or numerous computations, such as molecular modeling of the structure and properties of chemical compounds or biological structures, cryptography, or modeling of complex systems for weather forecasting, climate change, and so forth. Various new computing techniques are being investigated to complement or replace Boolean logic-based digital computing.
[0004] Quantum mechanical systems can be used to build new computational systems for complex information processing. Quantum systems suitable for quantum computing have ensembles of subsystems in which the subsystems exhibit different quantum states that are correlated or "entangled" with each other due to quantum coherence, including long-range quantum coherence. In various implementations for quantum computers, each subsystem in the ensemble of subsystems may be a quantum system that exhibits two or more different quantum states to operate as a quantum bit ("qubit"), and information can be represented, stored, processed, and transmitted through the superposition and correlation of the quantum states of the different qubits. Some examples of qubit implementations include superconducting qubits based on superconducting Josephson junctions, developed at IBM, Google, Intel, and others; ion-trapping devices based on electromagnetic trapping fields via laser beams, developed at Honeywell and IonQ; semiconductor-based quantum dots; and other devices capable of quantum computing operations. Summary of the Invention [Means for solving the problem]
[0005] (summary) The techniques disclosed in this patent document can be implemented to combine quantum and classical digital computing in scalable computing systems based on superconducting qubits that use Josephson junctions, which exhibit low dispersion and long coherence times and can be fabricated using well-developed integrated circuit fabrication techniques. More specifically, the disclosed techniques can be implemented by using two radio frequency (RF) superconducting quantum interference device (SQUID) circuits symmetrically coupled to form a quantum readout circuit to read out the superconducting qubits with improved readout fidelity and sensitivity.
[0006] In one aspect, the disclosed technology can be implemented to provide a system capable of information processing based, at least in part, on quantum computation using quantum states of qubits. The system includes a quantum computation module having a plurality of qubit circuits, each qubit circuit structured as a superconducting circuit to exhibit a different quantum state as a qubit and quantum-mechanically interact with other qubit circuits via quantum entanglement to cause a superposition or correlation of the different quantum states of the qubit circuits, and qubit readout circuits coupled to and communicating with each qubit circuit. Each qubit readout circuit includes an inductor and two radio frequency (RF) superconducting quantum interference device (SQUID) circuits symmetrically coupled to the inductor and forming a phase detector operable to measure the phase of a signal. Each quantum bit readout circuit is instructed to generate a readout signal at a signal frequency between the resonant frequencies associated with the excited and ground states of the corresponding quantum bit circuit, respectively, and to detect the phase of a reflected signal of the readout signal from the corresponding quantum bit circuit, and based on the detected phase indicates the quantum state of the corresponding quantum bit circuit.
[0007] In another aspect, the disclosed technology can be implemented to provide a method for performing information processing based, at least in part, on quantum computation using quantum states of qubits. The method includes operating a quantum computation module including multiple superconducting qubit circuits, such that each qubit circuit exhibits a different quantum state as a qubit and quantum mechanically interacts with other qubit circuits to cause a superposition or correlation of the different quantum states of the qubit circuits; and operating qubit readout circuits to interact with the qubit circuits and read out information about the qubit circuits. In the method, each qubit readout circuit includes an inductor and two radio frequency (RF) superconducting quantum interference device (SQUID) circuits coupled to the inductor and forming phase detectors operable to measure the phase of the signal. Each qubit readout circuit is instructed to generate a readout signal at a signal frequency between resonant frequencies associated with the excited state and ground state of the corresponding qubit circuit, and to detect the phase of a reflected signal of the readout signal from the corresponding qubit circuit, and indicate the quantum state of the corresponding qubit circuit based on the detected phase.
[0008] In yet another aspect, the disclosed technology can be implemented to provide a system capable of information processing based, at least in part, on quantum computation using quantum states of qubits. The system includes a cryostat system structured to include different cryogenic temperature stages operable to provide low and higher cryogenic temperatures, and a quantum computation module enclosed by the cryostat system at the low cryogenic temperature. The quantum computation module includes a first integrated chip structured to support a plurality of qubit circuits, each qubit circuit being structured as a superconducting circuit at the low cryogenic temperature such that, as a quantum mechanical system, each qubit circuit exhibits a different quantum state and quantum mechanically interacts with other qubit circuits through quantum entanglement, causing a superposition or correlation of the different quantum states of the qubit circuits. The system includes a qubit management circuit module surrounded by a cryostat system and located adjacent to the quantum computing module and coupled to maintain it at cryogenic temperatures, qubit control circuits supported by a second integrated chip and each configured to direct control signals to the qubit circuits to control the qubit circuits, and qubit readout circuits supported by the second integrated chip and each configured to output a readout signal from the qubit circuits, the readout signals each representing a quantum state of the qubit circuits, the qubit control circuit and the qubit readout circuit including superconducting circuitry at low cryogenic temperatures and configured to be operable to operate using the control signals and readout signals in a non-quantum classical manner based on digital processing. The second integrated chip is mated to the first integrated chip to form a multi-chip module and transfers control signals and readout signals therebetween, and each quantum bit readout circuit includes: (1) an inductor; (2) two radio frequency (RF) superconducting quantum interference device (SQUID) circuits coupled to the inductor and forming a phase detector operable to measure the phase of the signal; and (3) a bias circuit coupled to the two RF SQUID circuits to bias either or both of the two RF SQUID circuits and reduce the difference in current in the two RF SQUID circuits.The system further includes a circuit module surrounded by the cryostat system at a higher cryogenic temperature and structured to communicate with the quantum bit management circuit module in relation to control and readout signals; conductive bumps formed to connect with the first and second integrated chips, at least some of the conductive bumps forming conductive paths between the quantum bit management circuit module and the quantum computation module for transferring some of the control and readout signals without using other wiring between the quantum bit management circuit module and the quantum computation module; and conductive wires coupled between the quantum bit management circuit module and at least one of the circuit modules located at a higher temperature stage of the cryostat system for providing communication and transferring signals therebetween.
[0009] These and other aspects, and their implementations, are described in more detail in the drawings, description, and claims. The present invention provides, for example, the following items. (Item 1) 1. A system capable of information processing based, at least in part, on quantum computations using quantum states of qubits, comprising: a quantum computing module comprising a plurality of qubit circuits, each qubit circuit being structured as a superconducting circuit such that, as a qubit, each qubit circuit exhibits a different quantum state and quantum mechanically interacts with other qubit circuits via quantum entanglement to cause a superposition or correlation of the different quantum states of the qubit circuits; qubit readout circuits respectively coupled to and in communication with the qubit circuits, each qubit readout circuit including an inductor and two radio frequency (RF) superconducting quantum interference device (SQUID) circuits symmetrically coupled to the inductor and forming phase detectors operable to measure the phase of a signal, each qubit readout circuit generating a readout signal at a signal frequency between resonant frequencies associated with an excited state and a ground state of a corresponding qubit circuit, and instructed to detect the phase of a reflected signal of the readout signal from the corresponding qubit circuit, and indicating the quantum state of the corresponding qubit circuit based on the detected phase; A system comprising: (Item 2) Item 10. The system of item 1, wherein each quantum bit readout circuit includes a bias circuit coupled to compensate for differences in currents in the two RF SQUID circuits and maintain symmetry between the two RF SQUID circuits. (Item 3) 2. The system of claim 1, wherein each quantum bit readout circuit includes two bias circuits coupled to the two RF SQUID circuits, respectively, to provide bias currents to the two RF SQUID circuits, to compensate for differences in currents of the two RF SQUID circuits, and to maintain symmetry between the two RF SQUID circuits. (Item 4) Item 10. The system of item 1, wherein each quantum bit readout circuit is structured such that the signal frequency of the generated readout signal is midway between resonant frequencies associated with an excited state and a ground state, respectively, of the corresponding quantum bit circuit. (Item 5) Item 10. The system of item 1, wherein each quantum bit readout circuit is structured such that the generated readout signal is a microwave signal. (Item 6) Item 10. The system of item 1, wherein each quantum bit readout circuit is structured such that the generated readout signal is a sequence of single flux quantum (SFQ) pulses. (Item 7) a cryostat system configured to include different cryogenic stages operable to provide lower and higher cryogenic temperatures; 2. The system of claim 1, wherein the quantum bit readout circuit and the quantum computation module are enclosed in the cryostat system and are coupled to each other so that the quantum bit readout circuit and the quantum computation module are maintained at a common, low, cryogenic temperature. (Item 8) the quantum computing module is structured to include a first integrated chip structured to support the qubit circuit; the qubit readout circuit is structured to include a second integrated chip supporting the qubit readout circuit; Item 8. The system of item 7, wherein the second integrated chip is mated to the first integrated chip to form a multi-chip module. (Item 9) Item 10. The system of item 1, wherein the two RF SQUID circuits include two identical Josephson junctions symmetrically coupled to the inductor. (Item 10) each qubit readout circuit includes two bias circuits respectively coupled to the two RF SQUID circuits; 2. The system of claim 1, wherein each bias circuit is coupled to a corresponding RF SQUID circuit and structured to produce a bias flux such that the two RF SQUID circuits receive a separate bias flux, compensating for differences in currents in the two RF SQUID circuits and reducing asymmetry between the two RF SQUID circuits. (Item 11) 1. A method for performing information processing based at least in part on quantum computation using quantum states of qubits, comprising: operating a quantum computing module comprising a plurality of superconducting qubit circuits such that each qubit circuit, as a qubit, exhibits a different quantum state and quantum mechanically interacts with other qubit circuits to cause a superposition or correlation of the different quantum states of the qubit circuits; operating qubit readout circuits to respectively interact with said qubit circuits and read out information about said qubit circuits; Including, 1. The method of claim 1, wherein each quantum bit readout circuit includes an inductor and two radio frequency (RF) superconducting quantum interference device (SQUID) circuits coupled to the inductor and forming a phase detector operable to measure the phase of a signal, and each quantum bit readout circuit is instructed to generate a readout signal at a signal frequency between resonant frequencies associated with an excited state and a ground state of a corresponding quantum bit circuit, respectively, and to detect the phase of a reflected signal of the readout signal from the corresponding quantum bit circuit, and indicate the quantum state of the corresponding quantum bit circuit based on the detected phase. (Item 12) 12. The method of claim 11, comprising generating a bias current in at least one of the two RF SQUID circuits when operating each quantum bit readout circuit to reduce a difference in currents in the two RF SQUID circuits and maintain symmetry between the two RF SQUID circuits. (Item 13) 12. The method of claim 11, comprising generating two bias currents in the two RF SQUID circuits when operating each quantum bit readout circuit, respectively, to reduce a difference in currents in the two RF SQUID circuits and maintain symmetry between the two RF SQUID circuits. (Item 14) each said qubit readout circuit includes two bias circuits respectively coupled to said two RF SQUID circuits; 12. The method of claim 11, wherein, when operating each quantum bit readout circuit, the method further includes operating the two bias circuits to produce two bias fluxes in the two RF SQUID circuits, respectively, to compensate for a difference in currents in the two RF SQUID circuits and reduce asymmetry between the two RF SQUID circuits. (Item 15) 1. A system capable of information processing based, at least in part, on quantum computation using quantum states of qubits, comprising: a cryostat system configured to include different cryogenic stages operable to provide lower and higher cryogenic temperatures; a quantum computing module surrounded by the cryostat system at the low cryogenic temperature, the quantum computing module comprising a first integrated chip structured to support a plurality of qubit circuits, each qubit circuit being structured as a superconducting circuit at the low cryogenic temperature such that, as a quantum mechanical system, each qubit circuit exhibits a different quantum state and interacts quantum mechanically with other qubit circuits via quantum entanglement, causing a superposition or correlation of the different quantum states of the qubit circuits; a qubit management circuit module surrounded by the cryostat system and located adjacent to the quantum computing module and coupled to be maintained at cryogenic temperatures, wherein qubit control circuits are supported by a second integrated chip and each are configured to direct control signals to the qubit circuits to control the qubit circuits; and qubit readout circuits are supported by the second integrated chip and each are configured to output readout signals from the qubit circuits, the readout signals each representing a quantum state of the qubit circuit; a quantum bit management circuit module including a quantum bit readout circuit and a quantum bit management circuit configured to be operable to operate using the control signals and readout signals in a non-quantum classical manner based on digital processing, the quantum bit management circuit module including superconducting circuitry at the low cryogenic temperature, the quantum bit management circuit module including superconducting circuitry and operable to operate using the control signals and readout signals in a non-quantum classical manner based on digital processing, the second integrated chip mated to the first integrated chip to form a multi-chip module for transferring the control signals and readout signals therebetween, each quantum bit readout circuit including: (1) an inductor; (2) two radio frequency (RF) superconducting quantum interference device (SQUID) circuits coupled to the inductor and forming a phase detector operable to measure the phase of the signals; and (3) a bias circuit coupled to the two RF SQUID circuits to bias one or both of the two RF SQUID circuits to reduce a difference in currents in the two RF SQUID circuits; a circuit module enclosed by the cryostat system at the higher cryogenic temperature and structured to communicate with the qubit management circuit module in relation to the control and readout signals; conductive bumps formed to connect with the first and second integrated chips, at least some of the conductive bumps forming conductive paths between the quantum bit management circuit module and the quantum computing module for transferring some of the control and readout signals without using other wiring between the quantum bit management circuit module and the quantum computing module; a conductive wire coupled between the qubit management circuit module and at least one of the circuit modules located at a higher temperature stage of the cryostat system, providing communication and transfer signals therebetween; and A system comprising: (Item 16) Item 16. The system of item 15, wherein the bias circuit is structured to produce two bias magnetic fluxes in the two RF SQUID circuits, respectively, to reduce a difference in critical currents in the two RF SQUID circuits. (Item 17) 16. The system of claim 15, wherein the bias circuit is structured to generate a bias current in at least one of the two RF SQUID circuits, reduce a difference in currents in the two RF SQUID circuits, and maintain symmetry between the two RF SQUID circuits. (Item 18) 12. The system of claim 11, wherein the bias circuits are structured to generate two bias currents in the two RF SQUID circuits, respectively, and to reduce a difference in critical currents in the two RF SQUID circuits. (Item 19) Item 10. The system of item 1, wherein the quantum bit management circuit module and the quantum computation module are maintained at the same low cryogenic temperature. (Item 20) 16. The system of claim 15, wherein each qubit readout circuit generates a readout signal at a signal frequency between resonant frequencies associated with an excited state and a ground state of a corresponding qubit circuit, respectively, and is instructed to detect a phase of a reflected signal of the readout signal from the corresponding qubit circuit, and indicates a quantum state of the corresponding qubit circuit based on the detected phase. [Brief explanation of the drawings]
[0010] [Figure 1] FIG. 1 illustrates a portion of an embodiment of a quantum computing system.
[0011] [Figure 2] FIG. 2 shows a symmetric radio frequency (RF) superconducting quantum interference device (SQUID) implementation as the qubit readout circuit of FIG.
[0012] [Figure 3] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 4] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 5] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 6A] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 6B] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 6C] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 7A]3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 7B] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 7C] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 7D] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties. [Figure 7E] 3, 4, 5A, 5B, 5C, 6A, 6B, 6C, 7A, 7B, 7C, 7D, and 7E show examples of implementations of the design in FIG. 2 and their features or properties.
[0013] [Figure 8A] 8A, 8B, and 8C illustrate an example quantum computing system based on the disclosed technology. [Figure 8B] 8A, 8B, and 8C illustrate an example quantum computing system based on the disclosed technology. [Figure 8C] 8A, 8B, and 8C illustrate an example quantum computing system based on the disclosed technology. DETAILED DESCRIPTION OF THE INVENTION
[0014] (Detailed explanation) The techniques disclosed herein for computing or information processing systems use superconducting-based quantum computing modules (e.g., superconducting Josephson junctions) to construct quantum computing modules or devices for various applications, as well as classical digital computing modules or devices, based on quantum computing. Such quantum systems include ensembles of qubits based on superconducting Josephson junctions and can perform complex computations based on the superposition and correlation / entanglement of the qubits' quantum states. The qubit devices can be controlled by qubit control circuits, and qubit readout circuits, under control of the qubit control circuits, can be used to measure the quantum states of the qubit devices and provide readout of the qubits based on the measurements.
[0015] 1 illustrates a portion of an example quantum computing system that operates a superconducting qubit circuit or device as part of a quantum computing module 102 to perform quantum computations. A qubit management circuit module 104 is provided and is in communication with the quantum computing module 102. The qubit management module 104 includes qubit control circuitry for providing control signals to the individual qubit circuits of the quantum computing module 102 and qubit readout circuitry for reading out the individual qubit circuits, which may be implemented using non-quantum mechanical processing circuitry, such as digital circuitry or analog circuitry, or a combination of digital and analog circuitry. More specifically, FIG. 1 illustrates, as an example, a pair of qubit control and readout circuits for one qubit circuit, and the qubit management circuit module 104 and the quantum computing module 102 include multiple pairs of qubit control and readout circuits to form multiple qubit circuits.
[0016] In FIG. 1 , the qubit control circuitry of qubit management module 104 can be structured in different configurations. For example, one well-known technique for controlling qubits is to direct low-energy analog microwave signals to cause selective excitation of individual transitions between quantum states of a qubit device. In various implementations, hardware for generating and directing such analog microwave signals to qubits may require complex circuitry and wiring to generate and transmit the analog microwave signals through cryogenic equipment. In addition, analog microwave signals are subject to interference and noise, and therefore additional signal conditioning and filtering are required within the qubit control circuitry. These and other aspects of qubit control based on analog microwave signals present challenges for complex quantum computing systems with large numbers of qubits. As another example for controlling qubits, single-flux quantum (SFQ) logic circuits based on superconducting Josephson junctions can be used to generate resonant digital voltage SFQ pulses or pulse sequences to coherently control qubits. For example, U.S. Patent No. 9,425,804 B2, entitled "System and method for controlling superconducting quantum circuits using single flux quantum logic circuits" and issued to the Wisconsin Alumni Research Foundation, discloses controlling a superconducting quantum circuit by using an SFQ control circuit to generate a voltage pulse sequence of voltage pulses separated in time by an inter-pulse interval timed to the resonance period such that the SFQ pulses resonate with the frequency of the qubit. The pulse width of the SFQ pulses is set much smaller than the oscillation or resonance period of the qubit, making each qubit insensitive to the very fine shape of the individual SFQ pulses, and the qubit response is a function of the time integral of the SFQ pulses.Other circuit designs, based on SFQ technology and other techniques, may also be used to construct the qubit control circuitry of qubit management module 104.
[0017] The qubit readout circuit of FIG. 1 can be implemented based on different designs to achieve accurate measurement of the quantum state of a qubit without destroying the quantum state, i.e., quantum non-demolition (“QND”) measurement of the qubit. For example, the qubit readout circuit can be built based on a Josephson photomultiplier (JPM) and direct a qubit readout tone or signal that resonates with the qubit's |1> state. The readout pulse is then scattered from the qubit encoding its state within the amplitude of the readout pulse, producing a pulse. This pulse interacts with the JPM, which will undergo a phase slip only if the qubit is in |1>, i.e., if the input pulse is sufficiently strong. An example of this JPM readout implementation is described in U.S. Patent No. 9,692,423, entitled “System and method for circuit quantum electrodynamics measurement,” issued to Universitaet des Saarlandes (Germany), Syracuse University, and the Wisconsin Alumni Research Foundation.
[0018] For another example, a suitable qubit readout circuit for implementing a quantum computing system based on the technology disclosed herein can include a symmetric radio frequency (RF) superconducting quantum interference device (SQUID) with one superconducting loop and a single Josephson junction within the superconducting loop. The Josephson junction includes a thin non-superconducting layer (e.g., an insulating barrier) sandwiched between two superconductors so that electrons can tunnel through the barrier. The disclosed symmetric RF SQUID readout circuit can be directly coupled to the qubit for readout (e.g., the qubit's transmission line) or to a resonant cavity coupled to the qubit for readout, thereby transferring the quantum state information of the qubit circuit to the resonant cavity occupancy or directly readout. A single flux quantum (SFQ) circuit can be coupled to the symmetric RF SQUID readout circuit and configured to time the RF readout circuit and receive the readout signal.
[0019] FIG. 2 shows an example of a symmetric RF SQUID readout circuit with two RF SQUIDs coupled to share a common inductor L. While the two RF SQUIDs should be substantially identical, practical fabrication often renders them non-identical. Each RF SQUID contains one superconducting Josephson junction within a closed superconducting loop or ring, and the magnetic flux in the loop or ring can be measured with high accuracy. The readout circuit operates based on the interaction with the phase of a pulse reflected from the qubit under measurement, allowing the two closed superconducting loops of the symmetric RF SQUID readout circuit to have different potential shapes depending on the external magnetic flux Φ.
[0020] 3 shows a spectral diagram of the symmetric RF SQUID readout circuit of FIG. 2 in readout operation. To have the scattering signal be phase-sensitive, the frequency of the readout signal is set to the resonant frequency ω for the excited state |1> and the ground state |0>. e and ω g In some implementations, the frequency of the read signal is tuned to a frequency between the two resonant frequencies ω e and ωg It may be located at an intermediate point between
[0021] When homogeneously flux-biased, the present symmetric RF SQUID readout circuit can be operated to nonadiabatically change the potential shape using fast SFQ pulses without directly generating backaction pulses due to the symmetry of the device. The term "nonadiabatic" comes from the fact that symmetric RF SQUIDs are driven with SFQ pulses whose pulse durations are much shorter than those of typical microwave readout pulses. In various implementations, such readout pulses are typically 1-10 GHz (1,000-100 ps of period), but SFQ pulses can easily be generated with pulse durations less than 10 ps, about 1-2 orders of magnitude shorter than the period of a single readout pulse.
[0022] In some implementations of the disclosed technology, the spectrum of a symmetric RF SQUID can be designed to have frequencies much higher than the frequency of the qubit. In this way, the entire phase evolution of the RF SQUID will generate backaction photons (indirect backaction, as opposed to direct backaction) that will not be able to reach the qubit with frequencies outside the absorbance spectrum of the qubit and resonator. These photons will eventually be dissipated on the shunt resistance of the Josephson junction of the symmetric RF SQUID (Figure 2).
[0023] In operation, the symmetric RF SQUID of FIG. 2 is biased using SFQ pulses to digitally control the shape of the potential. Referring to the potential as a function of phase in FIG. 4, when a potential reversal is provided at time t, the phase particles drop to either the left or right of the potential peak, depending on the sign of the initial condition on the phase φ(t), and as a result, the current flowing into the inductance L can be in either direction. This current direction dependence is used as a readout mechanism for the symmetric RF SQUID of FIG. 2; by sending a phase-sensitive readout pulse to the symmetric RF SQUID, two different initial conditions for the phase φ exist, depending on the phase of the readout tone. Thus, the coupling between the two symmetric RF SQUID circuits and the inductors forms a phase detector operable to measure the phase of the reflected signal from the qubit, which carries information about the qubit's quantum state.
[0024] Simulations of the operation of the symmetric RF SQUID readout circuit of FIG. 2 were performed using the PSCAN2 superconducting circuit simulator, and the simulation results are shown in FIGS. 5A, 5B, and 5C. FIG. 5A shows that the readout pulse is at a frequency ω = (ω ) such that the phase of the reflected pulse will depend on the quantum state of the qubit. g +ω e ) / 2 is transmitted to the qubit. The reflected pulse from the qubit (or the resonant cavity coupled to the qubit) then injects a current into the symmetric RF SQUID readout circuit, whose phase will begin to oscillate depending on the state of the qubit, as shown in FIG. 5B. Note that if the plasma frequency of the device is much greater than ω, the φ(t) oscillation will be in phase with the input current (induced behavior), as shown in FIG. 5C.
[0025] The signal generated by the SFQ controller provides a flux bias of Φ / 2 to the symmetric RF SQUID readout circuit, changing the shape of the potential non-adiabatically (and without backaction). At this point, the phase particles will have a positive or negative offset relative to the Φ=0 state, resulting in them dropping into either the left or right dip adjacent to the potential peak. Current flowing into the central inductor L of the symmetric RF SQUID readout circuit then has a direction depending on the qubit state, and via the flux converter, the current is fed into the SFQ comparator for processing and storage.
[0026] The above-described symmetric RF SQUID readout circuit may be constructed to achieve one or more advantages. For example, the unwanted backaction of the symmetric RF SQUID readout circuit is state-independent and can be reduced for both states simultaneously. For example, unlike the previously described JPM readout design, the present symmetric RF SQUID readout circuit does not require being on resonance with the qubit itself to function properly. As a result, the spectrum of the potential after switching can be far from resonance with the qubit, thus avoiding precise control of the magnetic flux in a short time interval to the resonant condition. Regarding another embodiment, unlike the previously described JPM readout design, which requires complex preparation of the JPM readout circuit to reduce backaction photons, the above-described symmetric RF SQUID readout circuit does not require any difficult preparation of the device before readout; for example, it can start from the ground state where no magnetic flux is applied. For another example, the symmetry of the symmetric RF SQUID readout circuit described above allows qubit readout to be triggered with a steep SFQ pulse without any backaction, allowing very fast operation without increasing backaction for JPM. As yet another example, the present symmetric RF SQUID readout circuit is phase sensitive and can be used to measure ultra-low power signals (the readout pulse does not need to excite anything, it simply provides a phase shift to the phase particle).
[0027] The above-described symmetric RF SQUID readout circuit can also be used to take advantage of additional features. For example, the device can be operated to compensate for or reduce noise by performing multiple measurements on the same readout pulse, and the readout can be based on an average of the multiple measurements to reduce noise. For another example, the readout pulse can be created as a microwave pulse generated by a CMOS circuit or superconducting on-chip clock source, which in some implementations may be located on a separate cryogenic chip (e.g., qubit management module 104 in FIG. 1 ) coupled to the qubit chip (i.e., quantum computation module 102 in FIG. 1 ). In addition, the readout pulse can also be created by an SFQ pulse, since the phase response can be sensitive to phase variations of non-sinusoidal signals.
[0028] In particular, two Josephson junctions in a symmetric RF SQUID readout circuit. C1 and I C2 Deviations from symmetry can significantly affect the performance of the readout operation. Such undesired asymmetry of the two RF SQUID devices can be caused by various factors. For example, when fabricating actual devices, some differences may exist in the physical circuit components of two RF SQUID devices that are intended to be identical and symmetric in nature by the design for the present symmetric RF SQUID readout circuit. Such differences may be caused by unavoidable variations in the physical fabrication of those circuit components due to practical limitations in fabrication equipment or processes. As a result, the two final fabricated RF SQUIDs may differ from each other in one or more aspects, such as different critical currents, thus causing asymmetries in the circuit that can degrade the desired behavior of the ideally symmetric RF SQUID readout circuit. Undesired asymmetric properties of the two RF SQUIDs can be reduced by implementing bias or compensation circuitry in the actual device.
[0029] For example, in some designs, undesired asymmetric critical currents can be compensated for by applying input currents as asymmetric DC magnetic flux biases to cancel differences in currents in the two RF SQUIDs on either side of the shared common inductor L and ensure desired operation. Figure 6A shows an example of an SFQ bias circuit coupled to the symmetric RF SQUID readout circuit of Figure 2 to equalize undesired asymmetric critical currents in the two RF SQUIDs. A readout pulse generator is coupled to the qubit and sends readout pulses to the qubit, and a readout resonator is coupled to the qubit and directs readout pulses from the qubit to the symmetric RF SQUID readout circuit. In this example, the qubit and readout resonator form a basic qubit unit, and many such basic qubit units form a quantum computation module as part of a quantum processor or chip, as shown in Figures 1 and 8A-8C, and the symmetric RF SQUID readout circuit is part of a qubit management circuit module, as shown in Figures 1 and 8A-8C. The SFQ bias circuit provides an SFQ magnetic flux bias and digitally varies the potential shape via control outputs to two inductors L1 and L2 connected to the SFQ bias circuit, modeling the magnetic coupling to the two loops forming the symmetric RF-SQUID. These two inductors L1 and L2 can be operated with identical SFQ bias circuits coupled to them, as shown in FIG. 6A. The SFQ bias circuit is coupled to at least one of the two coupled inductors L1 and L2 and adjusts the currents in the two RF-SQUIDs so that they are substantially or nearly symmetric. Alternatively, these two inductors L1 and L2 can be coupled to two independent SFQ bias circuits, i.e., one SFQ bias circuit per inductor, respectively, to compensate for asymmetry in the critical currents of the junction. As shown, the SFQ bias circuit is also coupled to detect or read the sign of the current in the common inductor L of the symmetric RF-SQUID, which sign relies on quantum non-demolition (QND) measurements of the qubit.
[0030] FIG. 6B shows additional implementation details of the design of FIG. 6A, where the SFQ bias circuit is explicitly formed by two subcircuits: an SFQ generator and an SFQ comparator. The SFQ generator provides SFQ bias to two inductors L1 and L2, which are coupled to a symmetric RF-SQUID. In an implementation, this SFQ generator can be implemented as two separate SFQ generators, one SFQ bias circuit per inductor, to separately drive the two inductors L1 and L2, respectively. In this example, the SFQ generator is also synchronized to a read pulse generator to provide precise timing for the SFQ bias pulse and change the potential shape at the right moment. As shown, the read pulse generator produces the read pulse to the qubit for the read operation.
[0031] The SFQ comparator of FIG. 6B of the SFQ bias circuit is provided to read the sign of the current in the common inductor L of the symmetric RF-SQUID, the sign of which depends on the quantum non-demolition (QND) measurement of the qubit.
[0032] Figure 6C shows a single measurement of the qubit over different stages in time. In this measurement, the potential starts from the RESET condition, with zero applied magnetic flux. Next, the potential of the symmetric RF SQUID is adjusted (READY) to a harmonic configuration to start from an impedance condition that will maximize the current flowing into the common inductor of the symmetric RF SQUID from the readout pulse. A READOUT pulse is sent to the qubit and eventually reaches the symmetric RF-SQUID, causing the phase particle to begin oscillating depending on the phase of the readout pulse, which encodes the qubit measurement. The potential of the symmetric RF SQUID changes after time t0 from the start of the readout pulse, and the phase particle then drops onto either the left or right dimple. This process effectively digitizes the qubit measurement. The position of the phase particle is sensed by the SFQ comparator subcircuit. The protocol can then be restarted again directly from the harmonic case.
[0033] FIG. 7A shows an example of another design of an RF SQUID readout circuit, involving two RF SQUIDs and two independently adjustable bias current circuits to reduce the asymmetry between the two RF SQUIDs in a practical device based on the symmetric design of FIG. 2. FIG. 7B shows an example of a conceptual layout of the physical components of a demonstration method in which these two biases can be coupled to the two RF SQUID loops of the symmetric RF SQUID. The two independently adjustable DC bias circuits may be implemented by including two independent DC current generators i1 and i2 coupled to the two RF SQUID devices to apply two DC magnetic fluxes φ1 and φ2, respectively, to bias the RF SQUID readout circuit at a desired operating point that can compensate for the asymmetry between the two RF SQUID devices. C But, I C1 and I C2 are assumed to be the nominal desired values of the critical currents of the two RF SQUID devices, which exhibit actual critical currents at ΔI. C =I C1 -I C2 represents the difference in their respective critical currents, accounting for asymmetries due to processing or other factors in practical devices. The corresponding flux biases, provided by two independent DC current generators i1 and i2, are φ1 and φ2, respectively. These flux biases can be used to prepare the circuit in an optimal "ready" configuration, as shown in Figure 6C.
[0034] Critical current asymmetry ΔI C / I C Considering φ = ±10%, PSCAN2 circuit simulation is used to find combinations of DC magnetic fluxes φ and φ that reduce the undesired asymmetric circuit behavior of the circuit, and can achieve or approach the desired behavior of the readout system. Our simulation results are shown in Figures 7C and 7D.
[0035] Figure 7C shows the relationship between ΔIC / I C = 0%, in which case the region of DC flux bias for the device of Figure 7A to operate properly is marked in yellow. For the exact same junction, the region of flux (yellow) where the device works as intended is symmetric about the vertical axis, so there is no need to apply a DC bias, i.e., the value for (φ1 - φ2) / π is zero.
[0036] 7D and 7E show the ΔI C / I C 7C and 7E show similarly designed devices based on FIG. 2, exhibiting critical current differences of ±10%. For the unequal junctions shown in FIG. 7C, with a difference of −10%, and FIG. 7E, with a difference of +10%, the regions of magnetic flux where the device works as intended (yellow) are asymmetric. Here, it is possible to see how the difference between the two junctions can be compensated for by applying a differential flux bias (φ1-φ2) / π with the appropriate sign and value to restore the optimal DC bias point that ensures accurate operation of the readout device.
[0037] In the bias circuit implementation, the DC current biases that give rise to the flux values may be calibrated only once (to have the most symmetrical and harmonic potential shape in the "ready" configuration of FIG. 6C). These calibrated DC flux biases could potentially be generated locally by SFQ superconducting circuits located on a classical chip (as shown in FIGS. 8A-8C) or by a low-temperature CMOS chip located at the 4K stage. The fast flip would still be provided by an additional "fast flux line" driven by an SFQ pulse generator.
[0038] The above-described features of quantum computing systems, including symmetric RF SQUID readout circuits, can be used to implement computing or information processing systems involving superconducting-based quantum computing modules (e.g., superconducting Josephson junctions). Such systems can combine quantum computing modules or devices and classical digital computing modules or devices by strategically partitioning such systems into different quantum and classical digital computing modules, devices, or components at different cryogenic temperatures in various cryogenic stages in a manner that allows the system to be scalable for complex computing applications and to achieve superconducting conditions at those cryogenic stages. Such implementations can be used to simplify and reduce the complex and bulky cryogenic systems commonly used in various quantum computer systems that use superconducting quantum computing devices and to reduce the use or level of complex superconducting cabling systems to connect different computing or processing modules. Implementations of the disclosed technology can be devised to enable commercially scalable fabrication using IC fabrication processes and equipment to manufacture key modules or devices for quantum computer systems based on superconducting Josephson junctions.
[0039] 8A, 8B, and 8C show an example of a quantum computing system based on the disclosed techniques and an interconnect design for connecting different hardware modules in a multi-stage cryogenic system.
[0040] FIG. 8A illustrates an example of a quantum computing system 110 for producing a scalable hybrid quantum-classical computing system for commercial applications. As its name implies, quantum computing system 110 includes multiple qubit circuits, performs computational operations based on the quantum states of the qubit circuits, and communicates with external computers or computing systems 130 via communications links or networks 120. Communications links and networks 120 may include circuits in which signals are transferred in the form of electromagnetic signals, including electrical signals carried by, for example, conductive wires and / or optical signals. In operation, quantum computing system 110 receives computational requests or tasks from one or more external computers or computing systems 130, performs the requested computational operations, and transmits computation results back to one or more requesting external computers or computing systems 130. The communication and / or interaction between quantum computing system 110 and external computers or computing systems 130 via communications links or networks 120 may constitute the longest communication cycle in time in the operation of quantum computing system 110 and is labeled as a long communications link or loop. As further described below, quantum computing system 110 is structured to partition different internal computing modules whereby those internal computing modules communicate via medium communication links or loops with medium delays in time, and internal shorter communication links or loops, such as high-speed communication links or loops with shortest delays in time.
[0041] Quantum computing system 110 includes a multi-stage cryogenic system to provide different cryogenic stages at different locations and maintain different modules or devices at different cryogenic temperatures to keep them at their respective desired temperatures (e.g., T1, T2, T3, and T4 as shown). In some implementations, the different cryogenic stages may be designed to produce temperatures from millikelvin to tens of kelvins. This exemplary system 110 includes a quantum computing module 102 that includes multiple qubit circuits or devices as a quantum qubit ensemble to perform desired quantum computing operations via their respective qubit states. In many implementations, quantum computing module 102 is engaged or coupled to a cryogenic stage at a low cryogenic temperature T1 to ensure that the qubit circuits or devices are under the desired superconducting state and under acceptable quantum computing operating conditions with sufficiently low noise and interference levels.
[0042] Qubit management circuit module 104 is provided to communicate with quantum computing module 102, provide control signals to individual qubit circuits or devices of quantum computing module 102, and read out individual qubit circuits or devices, and may be implemented using non-quantum mechanical processing circuitry, such as digital or analog circuitry or a combination of digital and analog circuitry. In implementations, the symmetric RF SQUID readout circuitry and operations illustrated in Figures 2-7E can be implemented as part of qubit management circuit module 104.
[0043] The qubit management circuit module 104 may be implemented using superconducting circuitry and is coupled to a cryogenic stage at a cryogenic temperature T2, which in some implementations may be different from the low cryogenic temperature T1, or in other implementations may be the same as temperature T1. As further described below, in some designs, the quantum computation module 102 and the qubit management circuit module 104 may be mated to share a common cryogenic stage such that both modules are kept at the same cryogenic temperature. The qubit management circuit module 104 may be structured to include (1) qubit control circuits, each for directing control signals to the qubit circuits to control the qubit circuits, and (2) qubit readout circuits, each for outputting readout signals from the qubit circuits. In this example, quantum computing operations are performed within quantum computing module 102 based on control signals to the qubit circuits from qubit management circuit module 104, and readout of the qubit circuits is performed by qubit management circuit module 104, so that quantum computing module 102 and qubit management circuit module 104 together form, in part, the “heart” or “core” of quantum computing system 110. Communication between quantum computing module 102 and qubit management circuit module 104 is essential to quantum computing operations in terms of the quality and speed of such communication. Thus, in implementations, quantum computing module 102 and qubit management circuit module 104 are installed or positioned in close physical proximity or adjacent to one another to shorten the signal path between the two modules 102 and 104 and reduce any interference or noise on such communication. Additionally, the functions or operations of the quantum bit management circuit module 104 may be limited by intentional design to certain core functions or operations related to the quantum computation performed by the quantum computation module 102, thereby enabling the quantum bit management circuit module 104 to achieve short or fast response or processing times and ensure fast input / output signaling in the quantum computation module 102.This intentionally reduced functionality design consideration for qubit management circuit module 104 is also based on the power consumption and energy dissipation by qubit management circuit module 104 into its surroundings in light of its close proximity to quantum computing module 102, the desire to reduce noise or interference from qubit management circuit module 104 to quantum computing module 102, and the need to maintain appropriate cryogenic conditions in both qubit management circuit module 104 and the adjacent quantum computing module 102. Based on these and other considerations, the interconnect and signal paths between the two modules 102, 104 are designed to form a high-speed communication link or loop with minimal delay in time to quantum computing system 110. For example, in some implementations, quantum computing module 102 may include at least one integrated chip supporting one or more qubit circuits, and qubit management circuit module 104 may be formed on another integrated chip that is mechanically or electrically coupled directly to the integrated chip with the qubit circuits as a multi-chip module via superconducting bumps, capacitive coupling, or vacuum-mediated magnetic coupling, transferring control and readout signals therebetween. This multi-chip module formed by the two modules 102 and 104 can be bonded to the same cryogenic stage at low cryogenic temperature T1. This design may be commercially important because chip fabrication for the multi-chip module formed by the two modules 102 and 104 is a scalable platform to allow a wide range of qubit circuits to be fabricated and included within quantum computing module 102; similarly, qubit management circuit module 104 can also be scaled based on the number of qubit circuits present.
[0044] 8A further includes digital processing module 106, which provides certain signal and data processing functions or operations for quantum computing system 110 in connection with the quantum computations performed by quantum computing module 102 via qubit management circuit module 104. In this regard, digital processing module 108 forms the core processing module for non-quantum computation and / or processing functions within quantum computing system 110 and is therefore designed with much more complex circuitry and greater processing power than qubit management circuit module 104. In particular, certain functions and / or processing operations that cannot be integrated into qubit management circuit module 104 may be included within the circuitry of digital processing module 108. In addition, digital processing module 108 also serves as an interface between quantum computing system 110 and one or more external computers or computing systems 130 via communication link or network 120. As such, digital processing module 108 is designed to include further processing functions associated with communication and interaction between quantum computing system 110 and external computers or computing systems 130. Thus, unlike the installation and design of qubit management circuitry module 104, digital processing module 108 is complex and designed to be capable of being the classical counterpart and co-processor of quantum computing module 102 of quantum computing system 110. The increased functionality and / or processing operations and processing power packed into digital processing module 108 adds to the complexity and size of the circuitry of digital processing module 108, further increasing the power consumption and energy dissipation of digital processing module 108. Therefore, to reduce the noise and interference that digital processing module 108 may impose on quantum computing module 102, it is desirable to install digital processing module 108 physically away from quantum computing module 102 and its immediate neighboring qubit management circuitry module 104.Digital processing module 108 may be designed with various functions and capabilities, including, for example, error correction functions for quantum computing system 110, as well as non-quantum computing and / or processing functions within quantum computing system 110, including, for example, functions associated with controlling the control and readout of quantum computing module 102, performed by qubit management circuit module 104, and managing data for quantum computations, performed by quantum computing module 102. In some implementations, digital processing module 106 may be coupled to a cryogenic stage at a higher temperature T4 than for quantum computing module 102 (at T1) and qubit management circuit module 104 (at T2). Digital processing module 108 may be designed to include superconducting circuitry and is enclosed within the multi-stage cryogenic system of quantum computing system 110.
[0045] The intentional design to locate the digital processing module 108 away from the qubit management circuit module 104 leads to longer signal paths or links between the digital processing module 108 and the qubit management circuit module 104. Within the enclosure of the multi-stage cryogenic system, such signal paths or links may be formed by using superconducting wire or cable. Notably, the long length of such signal paths or links may cause some degree of signal degradation, and one option to address this is to add one or more interconnection repeaters or signal conditioning circuits 106 between the digital processing module 108 and the qubit management circuit module 104 to condition the signals. Like other modules in a multi-stage cryogenic system, each interconnection repeater or signal conditioning circuit 106 may be engaged or coupled to a cryogenic stage at a temperature T3 that is higher than the temperature of the qubit management circuit module 104 (at T1 or T2) and lower than the temperature of the digital processing module 108 (at T4). For example, the digital signal conditioning circuit module 106 may include superconducting circuits that condition the control or readout signals.
[0046] The remote location of digital processing module 108 from qubit management circuit module 104, combined with the complex circuitry and processing operations within digital processing module 108, leads to longer times or delays in the internal communication link or loop between digital processing module 108 and qubit management circuit module 104. As labeled in FIG. 8A , such an internal communication link or loop between digital processing module 108 and qubit management circuit module 104 forms a medium communication link or loop with a medium delay in time that is longer than the delay in the high-speed communication link or loop between qubit management circuit module 104 and quantum computation module 102, but shorter than the delay in the long communication link or loop between digital processing module 108 and external computer or computation system 130 via communication link or network 120.
[0047] Thus, the embodiment of quantum computing system 110 of FIG. 8A includes special design features to provide a hybrid computing environment that combines processing functions and / or operations by quantum computing portions (e.g., quantum computing module 102) and non-quantum classical processing portions (e.g., qubit management circuit module 104 and digital processing module 108), strategically partitioning and allocating different amounts and types of processing functions and / or operations of the non-quantum classical processing portions between qubit management circuit module 104 and digital processing module 108 in light of the intentional design to locate qubit management circuit module 104 in physical proximity to quantum computing module 102 while locating quantum computing module 102 remotely from digital processing module 108.
[0048] In various implementations, quantum computing module 102 and non-quantum classical processing portions (e.g., qubit management circuit module 104 and digital processing module 108) are structured to include superconducting circuits or devices coupled to different cryogenic stages of a multi-stage cryogenic system, and superconducting interconnect wires 112, 114, and 116 are provided and maintained at temperatures at different locations to transfer signals between different modules or stages. The multi-stage cryogenic system for quantum computing system 110 may be implemented in various configurations, including a multi-stage dilution refrigerator designed based on a mixture of helium-3 and helium-4 to provide different cryogenic stages at different graded cryogenic temperatures. In some implementations, the cryostat system may include a nuclear demagnetization refrigerator or an adiabatic demagnetization refrigerator.
[0049] The modules in quantum computing system 110 may be implemented in various configurations. For example, each qubit circuit for a qubit in quantum computing module 102 may include a superconducting Josephson junction circuit, or a switched superconducting circuit other than a Josephson junction circuit. For example, qubit management circuit module 104 may be implemented to include a superconducting Josephson junction circuit or a single flux quantum (SFQ) logic circuit, or a quantum flux parametron circuit such as an adiabatic quantum flux parametron circuit, or a nanowire switch, or a superconducting ferromagnetic transistor, or a superconducting spintronic device, or a field-effect superconducting device. Digital processing module 108 may be implemented to include SFQ circuitry, a field programmable gate array (FPGA), or one or more application-specific integrated circuits (ASICs).
[0050] In some implementations, quantum computing system 110 may further include a digital processing subsystem outside of the multi-stage cryogenic or cryostat system to communicate with digital processing module 108 and perform operations associated with running quantum or quantum-classical algorithms and / or supporting communication with one or more other computers or networks 130. This digital processing subsystem outside of the cryostat system may include one or more CMOS digital processors, one or more field programmable gate arrays (FPGAs), or one or more application specific integrated circuits (ASICs), or one or more central processing units (CPUs).
[0051] In the system of FIG. 8A, an optical communication link may be used for signal transfer, either as a replacement for a conductive wire or cable or as an additional link in combination with the conductive wire or cable. The optical communication link can provide faster data transmission and increase communication bandwidth. For example, optical communication can be used between a cryogenic stage (e.g., module 108 in FIG. 8A) and a room-temperature stage, which involves the highest-temperature stage. In implementations, optical transmitter and receiver devices are provided in such stages or circuit modules to enable transmission and reception of optical signals between the cryogenic stage, which is located at the highest temperature of the cryostat system, and room-temperature electronics for providing communication therebetween. In FIG. 1B, such an optical communication link may be implemented between module 108 and a CMOS FPGA subsystem.
[0052] FIG. 8B illustrates an example quantum computing system capable of processing information based, at least in part, on quantum computation using the quantum states of qubits, using the design of FIG. 8A . The cryostat system of this example is structured and operable to provide different cryogenic temperature stages at different temperatures: 20 mK, 0.1 K, 0.7 K, and 3 K. Different circuit modules at different cryogenic temperature stages are interconnected by superconducting wires, such as NbTi / Kapton strips. The quantum computing module, surrounded by the cryostat system, includes a first integrated chip structured to support qubit circuits. Each qubit circuit is structured as a superconducting circuit, exhibits a different quantum state as a qubit, and quantum-mechanically interacts with other qubit circuits through quantum entanglement, causing a superposition or correlation of the different quantum states of the qubit circuits. The qubit management circuit module is located adjacent to the quantum computing module and is coupled to the quantum computing module so as to be maintained at the same low cryogenic temperature as the quantum computing module. The quantum bit management circuit includes a second integrated chip, quantum bit control circuits supported by the second integrated chip and configured to direct control signals to the quantum bit circuits to control the quantum bit circuits, and quantum bit readout circuits supported by the second integrated chip and configured to output readout signals from the quantum bit circuits. In operation, the readout signals each represent a quantum state of the quantum bit circuit, and the quantum bit control circuits and quantum bit readout circuits include superconducting circuitry and are configured to be operable to operate using the control signals and readout signals in a non-quantum classical manner based on digital processing. Among other things, the second integrated chip is mated to the first integrated chip to form a multi-chip module and transfers the control signals and readout signals.
[0053] 8C shows an example implementation for interconnecting different hardware components of classical and quantum circuits. The system includes at least one classical non-quantum digital processing module 108, labeled as a "classical processor chip," at least one SFQ repeater as part of an interconnection network or module 104, and at least one classical superconducting controller as part of a qubit management circuit module 104, which controls a quantum computation processor or module 102 with multiple qubit circuits or devices.
[0054] The interconnects are designed into superconducting connection nodes or pads 140 and superconducting connection cables 150 for connecting the classical circuits 104, 106, and 108 with the quantum computation processor or module 102. As shown, the superconducting connection nodes or pads 140 may be implemented as superconducting bumps in direct contact with one or more of the hardware components (102, 104, 106, 108) to be connected and can be used to provide connections between the hardware components and the superconducting cables. As described with reference to FIG. 7A , the quantum computation module 102 and the qubit management circuit module 104 can be placed adjacent to each other to enable short connection paths between them for high-speed inter-module communication, and can be thermally coupled to the same cryogenic stage at the same low cryogenic temperature. In particular, the communication link or loop between the classical superconducting controller as part of qubit management circuit module 104 and quantum processor chip 102 should be a high-speed communication link or loop, and superconducting bumps can be used to interconnect the two modules 102 and 104 to enable high-speed exchange of information for quantum computation operations and readout. In some implementations, qubit management circuit module 104, containing the classical controller chip, can be positioned on the cold plate of a cryocooler directly below quantum computation module 102 to reduce noise and interference with quantum computation operations by qubit circuits or devices inside quantum computation module 102. In some implementations, superconducting bumps can be configured or used in the form of strips or microstrip lines, or other on-chip transmission lines, as well as fences or walls to produce components that separate qubits or systems of multiple qubits from each other to reduce mutual crosstalk between superconducting electronic elements or systems and to improve the quality factor of resonators.
[0055] In addition to direct electrical connections between quantum computing module 102 and qubit management circuit module 104, contactless connections may be used to achieve high-speed communication, including, for example, differential capacitive coupling and magnetic coupling between qubits and passive transmission lines, both of which provide a communication link without a direct connection and allow compensation for geometric mismatches between modules 102 and 104 and other components as a result of fabrication processes.
[0056] Unlike deterministic Turing machines and classical computers based on Boolean bits of "0" and "1" states, quantum computational operations by qubit circuits or devices inside quantum computation module 102 use quantum mechanical phenomena such as superposition of "0" and "1" states, entanglement between qubits, and interference between the probability amplitudes of nondeterministic measurement outcomes to perform computational operations. Superconducting qubits inside quantum computation module 102 can be implemented with superconducting Josephson junctions. Josephson junctions are systems of weakly coupled superconductors that exhibit correlated or coherent states and behave similarly to nonlinear inductors, enabling the construction of quantum nonharmonic oscillators. Two discrete energy level states of this nonharmonic oscillator and their quantum superposition are used to create the qubit. Using Josephson junctions, several versions of superconducting qubits can be constructed, such as transmons, exmons, quantoniums, fluxoniums, and C-shunt flux qubits.
[0057] As explained above, the state of the qubits is controlled by application of microwave signals or by digital SFQ pulse sequences. Typically, microwave signal generators are room-temperature devices, but quantum circuits comprising the qubits operate at very low cryogenic temperatures to reduce undesired decoherence of the qubits. However, the wiring required to deliver the microwave signals and extending from room temperature to the cryogenic stage where the quantum circuit resides introduces electrical noise, excessive heat load, and occupies a lot of space, which leads to decoherence and poses significant problems for scaling up quantum computers. To overcome this problem, various techniques may be used to control qubits in fully integrated cryogenic and hybrid quantum-classical processors such as those shown in Figures 14A-14C, such as the integration of superconducting qubits with classical superconducting digital logic families such as reciprocal quantum logic (RQL) as disclosed by Quentin P. Herr and Anna Y. Herr in "Ultra-low-power superconductor logic," J. Appl. Phys. 109, 103903 (2011); the use of adiabatic quantum flux parametrons (AQFPs) as disclosed by O. Chen, R. Cai, Y. Wang, F. Ke, T. Yamae, R. Saito, N. Takeuchi, and N. Yoshikawa in "Adiabatic Quantum-Flux-Parametron: Towards Building Extremely Energy-Efficient Circuits and Systems," Sci. Rep. 9, 10514 (2019); or the use of adiabatic quantum flux parametrons (AQFPs) as disclosed by O. Chen, R. Cai, Y. Wang, F. Ke, T. Yamae, R. Saito, N. Takeuchi, and N. Yoshikawa in "Energy-Efficient Circuits and Systems," Sci. Rep. 9, 10514 (2019)). "Single Flux Quantum Technology," IEEE Trans. Appl. Supercond. 21, 760 (2011), by O.A. Mukhanov, includes the use of energy-efficient single flux quantum (SFQ) technologies, including eSFQ and ERSFQ.As part of the interconnect design for the systems of Figures 14A-14C, control of qubits can be implemented via an SFQ system to control the state of the qubits by applying a sequence of SFQ pulses without the traditional use of microwave signals, such as those disclosed in U.S. Patent No. 9,425,804. Techniques for applying magnetic flux to quantum coherent superconducting circuits in U.S. Patent Application Publication No. 2015 / 0263736A1 may also be implemented. Readout of the qubits may be implemented by quantum electrodynamic measurements, as disclosed in U.S. Patent No. 9,692,423. Cryogenic CMOS (cryoCMOS) techniques may also be implemented in the systems of Figures 7A-7C, including, for example, to control superconducting qubits.E. Coal、F. Sebastian、A. Vladimirescu、H. Homulle、S. Visser、L. Song、およびRM Incandela.Of Cryo-CMOS for Quantum Computing. 1-13. doi:10.1109 / IEDM.2016.7838410;JC Bardin;E. Jeffrey、E. Lucero、T. Huang、O. Naaman、R. Barends、T. White、M. Giustina、D. Sank、P. Roushan、K. Arya、B. Chiaro、J. Kelly、J. Chen、B. Burkett、Y. Chen、A. Dunsworth、A. Fowler、B. Foxen、C. Gidney、R. Graff、P. Klimov, J. Mutus;M. McEwen、A. Megrant、M. Neeley、C. Neill, C. Quintana. Vainsencher、H. NevenおよびJ. Martinis.の「A 28nm Bulk-CMOS 4-to-8GHz 2mW Cryogenic Pulse Modulator for Scalable Quantum Computing」 IEEE J. Solid-St. Circuits 54, 3043-3060 (2019).
[0058] Practical implementation of the systems of Figures 8A-8C requires careful design of the interconnection or interface between the quantum devices, located at millikelvin temperatures, and the classical processing circuitry, located at liquid helium temperatures. The interconnection in the example of Figure 8C involves placing the quantum computation module 102 and the qubit management circuitry module 104 next to each other on the same cryogenic stage of a dilution refrigerator, without using any superconducting cables or wires 150 between the modules 102 and 104. Instead, superconducting bumps or pads 140 are used to physically join or fasten the two modules 102 and 104 together. The signal path between the two modules 102 and 104 can be implemented in a variety of ways, including signaling via a conductive path formed through the superconducting bumps or pads 140 between the modules 102 and 104, or signaling via capacitive and / or magnetic coupling between the modules 102 and 104. The signal path between the two modules 102 and 104 is designed to minimize signal transmission time (e.g., by reducing or eliminating the amount of wiring between the modules 102 and 104) and to form a high-speed communication link or loop within the system as described above with respect to FIG. 8A.
[0059] In an implementation, two modules 102 and 104 may be supported by two IC chips and stacked and bonded together to form a multi-chip module (MCM), where the two chips are bonded as an integrated unit to the same low cryogenic temperature stage, thus both modules 102 and 104 are operated at the same low cryogenic temperature. Superconducting bumps or pads 140 may be used as part of the fastening of the two IC chips. The interconnect in the embodiment of FIG. 8C also implements a combination of superconducting bumps or pads 140 and superconducting cable or wire 150, where the superconducting bumps or pads 140 are used at the terminals of the superconducting cable or wire 150 to connect the wire terminals to a device. 8C shows that the qubit management circuit module 104 of FIG. 8C is connected to an interconnection network or module 106, such as a digital signal conditioning circuit module, via superconducting cables or wires 150, with two sets of superconducting bumps or pads 140 used to splice the two end terminals of each superconducting cable or wire 150 to contact points on the qubit management circuit module 104 and the corresponding interconnection network or module 106. This use of superconducting bumps or pads 140 and superconducting cables or wires 150 can be applied to connections between a digital processing module 108 and the corresponding interconnection network or module 106, and to connections to other modules, such as connections between different stages of an interconnection network or module 106 or between digital signal conditioning circuit modules. As shown, such superconducting cables or wires 150, along with superconducting bumps or pads 140, constitute part of a medium-length communication link and loop, as described above with respect to FIG. 8A.
[0060] The above-described embodiments of the disclosed quantum computing system provide unique interconnect designs for different modules, enabling practical and scalable implementations based on new system designs and new interconnect designs by reducing the complex wiring with numerous wires extending from room temperature to the cryogenic stage where the quantum chip resides. The disclosed system designs and interconnects will enable quantum computing systems to be scaled with different quantum computing powers for different applications. In implementations, qubit control can be implemented by SFQ control and by placing an SFQ control chip in close proximity to the quantum circuit chip with suitable interconnects operating at different cryogenic temperatures, e.g., from liquid He temperatures for classical non-quantum processing circuits or modules to millikelvin temperatures for the qubits of one or more quantum circuits or processors.
[0061] While this patent document contains many details, these should not be construed as limitations on any subject matter or the scope of what may be claimed, but rather as descriptions of features that may be specific to particular embodiments of particular techniques. Certain features described in this patent document in the context of separate embodiments can also be implemented in combination in a single embodiment. Conversely, various features described in the context of a single embodiment can also be implemented in multiple embodiments separately or in any suitable subcombination. Also, while features may be described above as operative in a combination and may even be initially claimed as such, in some cases one or more features from a claimed combination can be excluded from the combination, and the claimed combination may also be directed to subcombinations or variations of subcombinations.
[0062] Although only a few implementations and examples are described, other implementations, improvements, and variations can be made based on what is described and illustrated in this patent document. What is claimed is what is described and illustrated, including:
Claims
1. A system capable of information processing based at least in part on quantum computation using quantum states of qubits, comprising: a quantum computing module comprising a plurality of qubit circuits, each qubit circuit being structured as a superconducting circuit such that each qubit circuit exhibits a different quantum state and quantum mechanically interacts with other qubit circuits via quantum entanglement to cause a superposition or correlation of the different quantum states of the qubit circuits; qubit readout circuits, each qubit readout circuit coupled to and in communication with the qubit circuit, each qubit readout circuit including an inductor and two radio frequency (RF) superconducting quantum interference device (SQUID) circuits symmetrically coupled to the inductor to form a phase detector, the phase detectors operable to measure a phase of a signal, each qubit readout circuit instructed to generate a readout signal at a signal frequency between resonant frequencies respectively associated with an excited state and a ground state of a corresponding qubit circuit, and to detect the phase of a reflected signal of the readout signal from the corresponding qubit circuit, and indicate a quantum state of the corresponding qubit circuit based on the detected phase; A system comprising:
2. 10. The system of claim 1, wherein each quantum bit readout circuit includes a bias circuit coupled to compensate for differences in currents in the two RF SQUID circuits and maintain symmetry between the two RF SQUID circuits.
3. 2. The system of claim 1, wherein each quantum bit readout circuit includes two bias circuits respectively coupled to the two RF SQUID circuits to provide bias currents to the two RF SQUID circuits, to compensate for differences in currents in the two RF SQUID circuits, and to maintain symmetry between the two RF SQUID circuits.
4. 10. The system of claim 1, wherein each qubit readout circuit is structured such that a signal frequency of the generated readout signal is midway between the resonant frequencies associated with an excited state and a ground state, respectively, of the corresponding qubit circuit.
5. 10. The system of claim 1, wherein each qubit readout circuit is structured such that the generated readout signal is a microwave signal.
6. 10. The system of claim 1, wherein each qubit readout circuit is structured such that the generated readout signal is a sequence of single flux quantum (SFQ) pulses.
7. a cryostat system configured to include different cryogenic stages operable to provide lower and higher cryogenic temperatures; 10. The system of claim 1, wherein the qubit readout circuitry and the quantum computation module are enclosed in the cryostat system, and the qubit readout circuitry and the quantum computation module are coupled to each other such that the qubit readout circuitry and the quantum computation module are maintained at a common, low, cryogenic temperature.
8. the quantum computing module is structured to include a first integrated chip structured to support the qubit circuit; the qubit readout circuit is structured to include a second integrated chip supporting the qubit readout circuit; 8. The system of claim 7, wherein the second integrated chip is mated to the first integrated chip to form a multi-chip module.
9. The system of claim 1 , wherein the two RF SQUID circuits include two identical Josephson junctions symmetrically coupled to the inductor.
10. each qubit readout circuit includes two bias circuits respectively coupled to the two RF SQUID circuits; 10. The system of claim 1, wherein each bias circuit is coupled to a corresponding RF SQUID circuit and structured to produce a bias flux such that the two RF SQUID circuits receive separate bias fluxes to compensate for differences in currents in the two RF SQUID circuits and reduce asymmetries between the two RF SQUID circuits.
11. A method for performing information processing based at least in part on quantum computations using quantum states of qubits, comprising: operating a quantum computing module, the quantum computing module comprising a plurality of superconducting qubit circuits, such that each qubit circuit exhibits a different quantum state as a qubit and quantum mechanically interacts with other qubit circuits to cause a superposition or correlation of the different quantum states of the qubit circuits; operating qubit readout circuits to interact with each of the qubit circuits to read out information about the qubit circuits; Including, each quantum bit readout circuit includes an inductor and two radio frequency (RF) superconducting quantum interference device (SQUID) circuits coupled to the inductor to form a phase detector, the phase detectors operable to measure the phase of a signal; each quantum bit readout circuit is instructed to generate a readout signal at a signal frequency between resonant frequencies respectively associated with an excited state and a ground state of a corresponding quantum bit circuit; and detect the phase of a reflected signal of the readout signal from the corresponding quantum bit circuit; and indicate the quantum state of the corresponding quantum bit circuit based on the detected phase.
12. 12. The method of claim 11, comprising generating a bias current in at least one of the two RF SQUID circuits when operating each qubit readout circuit to reduce a difference in currents in the two RF SQUID circuits and maintain symmetry between the two RF SQUID circuits.
13. 12. The method of claim 11, comprising generating two bias currents in the two RF SQUID circuits, respectively, when operating each quantum bit readout circuit to reduce a difference in currents in the two RF SQUID circuits and maintain symmetry between the two RF SQUID circuits.
14. each quantum bit readout circuit includes two bias circuits respectively coupled to the two RF SQUID circuits; 12. The method of claim 11 , wherein, upon operating each qubit readout circuit, the method further comprises operating the two bias circuits to produce two bias fluxes in the two RF SQUID circuits, respectively, to compensate for a difference in currents in the two RF SQUID circuits and reduce asymmetry between the two RF SQUID circuits.
15. A system capable of information processing based at least in part on quantum computations using quantum states of qubits, comprising: a cryostat system structured to include different cryogenic stages operable to provide lower and higher cryogenic temperatures; a quantum computing module surrounded by the cryostat system at the low cryogenic temperature, the quantum computing module comprising a first integrated chip structured to support a plurality of qubit circuits, each qubit circuit structured as a superconducting circuit at the low cryogenic temperature such that as a quantum mechanical system, each qubit circuit exhibits a different quantum state and interacts quantum mechanically with other qubit circuits through quantum entanglement, causing a superposition or correlation of the different quantum states of the qubit circuits; a quantum bit management circuit module surrounded by the cryostat system and located adjacent to the quantum computing module and coupled to be maintained at cryogenic temperatures, wherein quantum bit control circuits are supported by a second integrated chip and are structured to direct control signals to the quantum bit circuits to respectively control the quantum bit circuits; quantum bit readout circuits are supported by the second integrated chip and are structured to output readout signals from the quantum bit circuits respectively, the readout signals each representing a quantum state of the quantum bit circuit; a quantum bit management circuit module including: a quantum bit readout circuit configured to be operable at the low cryogenic temperature, the quantum bit readout circuit including superconducting circuitry and operable to operate using the control and readout signals in a non-quantum classical manner based on digital processing; the second integrated chip mated to the first integrated chip to form a multi-chip module for transferring the control and readout signals therebetween; and each quantum bit readout circuit including: (1) an inductor; (2) two radio frequency (RF) superconducting quantum interference device (SQUID) circuits coupled to the inductor and forming a phase detector operable to measure the phase of a signal; and (3) a bias circuit coupled to the two RF SQUID circuits for biasing either or both of the two RF SQUID circuits to reduce a difference in currents in the two RF SQUID circuits. a circuit module enclosed by the cryostat system at the higher cryogenic temperature and structured to communicate with the qubit management circuit module in relation to the control and readout signals; conductive bumps formed to connect with the first and second integrated chips, at least some of the conductive bumps forming conductive paths between the quantum bit management circuit module and the quantum computing module for transferring some of the control and readout signals without using other wiring between the quantum bit management circuit module and the quantum computing module; a conductive wire coupled between the qubit management circuit module and at least one of the circuit modules located at a higher temperature stage of the cryostat system, for providing communication and transfer of signals therebetween; A system comprising:
16. 16. The system of claim 15, wherein the bias circuit is structured to produce two bias magnetic fluxes in the two RF SQUID circuits, respectively, to reduce a difference in critical currents in the two RF SQUID circuits.
17. 16. The system of claim 15, wherein the bias circuit is structured to generate a bias current in at least one of the two RF SQUID circuits to reduce a difference in currents in the two RF SQUID circuits and to maintain symmetry between the two RF SQUID circuits.
18. 16. The system of claim 15, wherein the bias circuit is structured to generate two bias currents in the two RF SQUID circuits, respectively, to reduce a difference in critical currents in the two RF SQUID circuits.
19. 16. The system of claim 15, wherein the qubit management circuit module and the quantum computation module are maintained at the same low cryogenic temperature.
20. 16. The system of claim 15, wherein each qubit readout circuit is instructed to generate a readout signal at a signal frequency between resonant frequencies respectively associated with an excited state and a ground state of a corresponding qubit circuit, detect a phase of a reflected signal of the readout signal from the corresponding qubit circuit, and indicate a quantum state of the corresponding qubit circuit based on the detected phase.
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