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线性系统-浴耦合中的非绝热几何量子计算。

Non-adiabatic holonomic quantum computation in linear system-bath coupling.

作者信息

Sun Chunfang, Wang Gangcheng, Wu Chunfeng, Liu Haodi, Feng Xun-Li, Chen Jing-Ling, Xue Kang

机构信息

School of Physics, Northeast Normal University, Changchun 130024, People's Republic of China.

Pillar of Engineering Product Development, Singapore University of Technology and Design, 8 Somapah Road, Singapore 487372.

出版信息

Sci Rep. 2016 Feb 5;6:20292. doi: 10.1038/srep20292.

Abstract

Non-adiabatic holonomic quantum computation in decoherence-free subspaces protects quantum information from control imprecisions and decoherence. For the non-collective decoherence that each qubit has its own bath, we show the implementations of two non-commutable holonomic single-qubit gates and one holonomic nontrivial two-qubit gate that compose a universal set of non-adiabatic holonomic quantum gates in decoherence-free-subspaces of the decoupling group, with an encoding rate of (N - 2)/N. The proposed scheme is robust against control imprecisions and the non-collective decoherence, and its non-adiabatic property ensures less operation time. We demonstrate that our proposed scheme can be realized by utilizing only two-qubit interactions rather than many-qubit interactions. Our results reduce the complexity of practical implementation of holonomic quantum computation in experiments. We also discuss the physical implementation of our scheme in coupled microcavities.

摘要

无退相干子空间中的非绝热几何量子计算可保护量子信息免受控制不精确性和退相干的影响。对于每个量子比特都有其自身环境的非集体退相干情况,我们展示了两个不可对易的几何单量子比特门和一个几何非平凡双量子比特门的实现,它们在解耦群的无退相干子空间中构成了一组通用的非绝热几何量子门,编码率为(N - 2)/N。所提出的方案对控制不精确性和非集体退相干具有鲁棒性,其非绝热特性确保了更短的操作时间。我们证明,仅利用双量子比特相互作用而非多量子比特相互作用就可以实现我们提出的方案。我们的结果降低了实验中几何量子计算实际实现的复杂性。我们还讨论了该方案在耦合微腔中的物理实现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/86d5/4742878/0a8f4cd390cd/srep20292-f1.jpg

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