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Fast Holonomic Quantum Computation on Superconducting Circuits With Optimal Control

Sai Li, Tao Chen, Zheng‐Yuan Xue

2020Advanced Quantum Technologies48 citationsDOIOpen Access PDF

Abstract

Abstract Geometric phases induced in quantum evolutions have built‐in noise‐resilient characters, and thus can find applications in many robust quantum manipulation tasks. Here, a feasible and fast scheme for universal quantum computation on superconducting circuits with nonadiabatic non‐Abelian geometric phases is proposed, using resonant interaction of three‐level quantum system. In this scheme, arbitrary single‐qubit quantum gates can be implemented in a single‐loop scenario by shaping both the amplitudes and phases of the two driving microwave fields resonantly coupled to a transmon device. Moreover, nontrivial two‐qubit gates can also be realized with an auxiliary transmon simultaneously coupled to the two target transmons in an effective resonant way. In particular, this proposal can be compatible to various optimal control techniques, which further enhances the robustness of the quantum operations. Therefore, this proposal represents a promising way toward fault‐tolerant quantum computation on solid‐state quantum circuits.

Topics & Concepts

TransmonQuantum computerQuantum gateHolonomicQuantumPhysicsQuantum circuitComputationRobustness (evolution)Quantum algorithmQuantum mechanicsQuantum error correctionElectronic circuitQuantum networkOpen quantum systemOptimal controlQuantum informationTopology (electrical circuits)Quantum processQuantum operationQubitQuantum technologyComputer scienceQuantum Fourier transformQuantum logicAmplitudeQuantum systemQuantum simulatorQuantum phase estimation algorithmMicrowaveQuantum controlOne-way quantum computerQuantum sensorQuantum Computing Algorithms and ArchitectureQuantum Information and CryptographyMechanical and Optical Resonators
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