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Energy dissipation during two-state switching for quantum-dot cellular automata

机译:用于量子点蜂窝自动机的两个状态切换期间的能量耗散

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摘要

We examine the energy dissipated by a two-state quantum system during a switching operation when interacting with a thermal environment. For an isolated system, the excess energy decreases exponentially with switching time. For classically damped systems, the energy dissipation decreases linearly with switching time. We model the quantum system coupled to a thermal environment using a Lindblad equation for the density matrix. For rapid switching, the exponential quantum adiabaticity holds. For slow enough switching, the damping from the bath yields linear dissipation, as in the classical limit. Between these two limits, when the switching time is comparable to the characteristic energy transfer time to the thermal bath, there is an inverted region when dissipation increases with longer switching times. Consequences for the design of molecular quantum-dot cellular automata are discussed.
机译:在与热环境相互作用时,我们在切换操作期间检查由两个状态量子系统散发的能量。对于孤立的系统,过量的能量随着切换时间呈指数级增长。对于经典阻尼系统,能量耗散线性地减小与切换时间。我们使用LINDBLAD方程为密度矩阵塑造耦合到热环境的量子系统。为了快速切换,指数Quantum绝热持有。对于足够慢的切换,从浴缸中阻尼产生线性耗散,如在经典的极限中。在这两个限制之间,当切换时间与热浴的特性能量转移时间相当时,当耗散随着切换时间较长的时间增加时,存在倒置区域。讨论了分子量子点蜂窝自动机设计的后果。

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  • 来源
    《Journal of Applied Physics》 |2021年第2期|024304.1-024304.10|共10页
  • 作者单位

    Department of Electrical Engineering University of Notre Dame Notre Dame Indiana 46556 USA;

    Department of Electrical Engineering University of Notre Dame Notre Dame Indiana 46556 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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