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Nonadiabatic geometric quantum computation with optimal control on superconducting circuits 被引量:7

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摘要 Quantum gates,which are the essent ial building blocks of quantum computers,are very fragile.Thus,to realize robust quanturm gates with high fidelity is the ultimate goal of quantum manipulation.Here,we propose a nonadiabatic geometric quantum computation scheme on superconducting circuits to engineer arbitrary quantum gates,which share both the robust merit of geometric phases and the capacity to combine with optimal control technique to further enhance the gate robustness.Specif-ically,in our proposal,arbitrary geometric single-qubit gates can be realized on a transmon qubit,by a resonant microwave field driving,with both the amplitude and phase of the driving being time-dependent.Meanwhile,nontrivial two-qubit gometric gates can be implemented by two capacitively coupled transmon qubits,with one of the transmon qubits'frequency being modulated to obtain ef-fective resonant coupling between them.Therefore,our scheme provides a promising step towards fault-tolerant solid-state quantum computation.
出处 《Frontiers of physics》 SCIE CSCD 2020年第4期17-24,共8页 物理学前沿(英文版)
基金 This work was supported by the Key-Arca Research and Development Program of Guangdong Province(Grant No.2018B030326001) the National Natural Science Foundation of China(Grant No.11874156) the National Key R&D Program of China(Grant No.2016 YFA0301803).
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