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Application of hierarchical equations of motion (HEOM) to time dependent quantum transport at zero and finite temperatures

机译:运动分层方程(HEOM)在零和有限温度下对时间依赖的量子传输的应用

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摘要

Going beyond the limitations of our earlier works [X. Zheng, F. Wang, C.Y. Yam, Y. Mo, G.H. Chen, Phys. Rev. B 75, 195127 (2007); X. Zheng, G.H. Chen, Y. Mo, S.K. Koo, H. Tian, C.Y. Yam, Y.J. Yan, J. Chem. Phys. 133, 114101 (2010)], we propose, in this manuscript, a new alternative approach to simulate time-dependent quantum transport phenomenon from first-principles. This new practical approach, still retaining the formal exactness of HEOM framework, does not rely on any intractable parametrization scheme and the pole structure of Fermi distribution function, thus, can seamlessly incorporated into first-principles simulation and treat transient response of an open electronic systems to an external bias voltage at both zero and finite temperatures on the equal footing. The salient feature of this approach is surveyed, and its time complexity is analysed. As a proof-of-principle of this approach, simulation of the transient current of one dimensional tight-binding chain, driven by some direct external voltages, is demonstrated.
机译:超越了我们早期作品的局限性[X.郑F.王春玉任Y仪陈物理B 75,195127(2007);郑X.G.H.陈云墨顾浩田天宇Yam,Y.J. Yan,J.Chem。物理133,114101(2010)],我们在本手稿中提出了一种新的替代方法,用于从第一原理模拟时间相关的量子传输现象。这种新的实用方法仍然保留了HEOM框架的形式上的准确性,它不依赖于任何棘手的参数化方案和费米分布函数的极点结构,因此可以无缝地集成到第一性原理仿真中并处理开放电子系统的瞬态响应在零和有限温度下在相同的基础上提供一个外部偏置电压。研究了该方法的显着特征,并分析了其时间复杂度。作为这种方法的原理证明,对由一些直接外部电压驱动的一维紧密绑定链的瞬态电流进行了仿真。

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