Non-Markovian Complexity in the Quantum-to-Classical Transition

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作者
Heng-Na Xiong
Ping-Yuan Lo
Wei-Min Zhang
Da Hsuan Feng
Franco Nori
机构
[1] National Cheng Kung University,Department of Physics and Center for Quantum Information Science
[2] Zhejiang University of Technology,Department of Applied Physics
[3] University of Macau,Physics Department
[4] Center for Emergent Matter Science,undefined
[5] RIKEN,undefined
[6] The University of Michigan,undefined
[7] Ann Arbor,undefined
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The quantum-to-classical transition is due to environment-induced decoherence and it depicts how classical dynamics emerges from quantum systems. Previously, the quantum-to-classical transition has mainly been described with memory-less (Markovian) quantum processes. Here we study the complexity of the quantum-to-classical transition through general non-Markovian memory processes. That is, the influence of various reservoirs results in a given initial quantum state evolving into one of the following four scenarios: thermal state, thermal-like state, quantum steady state, or oscillating quantum nonstationary state. In the latter two scenarios, the system maintains partial or full quantum coherence due to the strong non-Markovian memory effect, so that in these cases, the quantum-to-classical transition never occurs. This unexpected new feature provides a new avenue for the development of future quantum technologies because the remaining quantum oscillations in steady states are decoherence-free.
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