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基于实验观测的菲涅耳双棱镜干涉的理论探究
  • 期刊名称:物理实验
  • 时间:2011
  • 页码:42-46
  • 分类:O431.2[机械工程—光学工程;理学—光学;理学—物理] TM911.4[电气工程—电力电子与电力传动]
  • 作者机构:[1]Faculty of Science, Kunming University of Science and Technology, Kunming 650093, China, [2]State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Wuhan Institute of Physics and Mathematics, Chinese Academy of Sciences, Wuhan 430071, China, [3]Graduate School of the Chinese Academy of Sciences, Beijing 100049, China, [4]Department of Physics, Southeast University, Nanjing 211189, China
  • 相关基金:Project supported by the National Natural Science Foundation of China (Grant Nos. 10974225, 10944005, and 11004029).
  • 相关项目:可扩展的一维及高维量子随机行走及其物理实现
作者: 石将建|薛鹏|
中文摘要:

Quantum walk is different from random walk in reversibility and interference. Observation of the reduced re- versibility in a realistic quantum walk is of scientific interest in understanding the unique quantum behavior. We propose an idea to experimentally investigate the decoherence-induced irreversibility of quantum walks with trapped ions in phase space via the average fidelity decay. By introducing two controllable decoherence sources, i.e., the phase damping channel (i.e., dephasing) and the high temperature amplitude reservoir (i.e., dissipation), in the intervals between the steps of quantum walk, we find that the high temperature amplitude reservoir shows more detrimental effects than the phase damping channel on quantum walks. Our study also shows that the average fidelity decay works better than the position variance for characterizing the transition from quantum walks to random walk. Experimental feasibility to monitor the irreversibility is justified using currently available techniques.

英文摘要:

Quantum walk is different from random walk in reversibility and interference. Observation of the reduced reversibility in a realistic quantum walk is of scientific interest in understanding the unique quantum behavior. We propose an idea to experimentally investigate the decoherence-induced irreversibility of quantum walks with trapped ions in phase space via the average fidelity decay. By introducing two controllable decoherence sources, i.e., the phase damping channel (i.e., dephasing) and the high temperature amplitude reservoir (i.e., dissipation), in the intervals between the steps of quantum walk, we find that the high temperature amplitude reservoir shows more detrimental effects than the phase damping channel on quantum walks. Our study also shows that the average fidelity decay works better than the position variance for characterizing the transition from quantum walks to random walk. Experimental feasibility to monitor the irreversibility is justified using currently available techniques.

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