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Unphysical features in the application of the Boltzmann collision operator in the time-dependent modeling of quantum transport

机译:Boltzmann碰撞算子在时间依赖的量子传输建模中的应用中的非物理特征

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In this work, the use of the Boltzmann collision operator for dissipative quantum transport is analyzed. Its mathematical role on the description of the time-evolution of the density matrix during a collision can be understood as processes of adding and subtracting states. We show that unphysical results can be present in quantum simulations when the old states (that built the density matrix associated to an open system before the collision) are different from the additional states generated by the Boltzmann collision operator. As a consequence of the Fermi Golden rule, the new generated sates are usually eigenstates of the momentum or kinetic energy. Then, negative values of the charge density may appear after the collision. This fact is originated by the different time-evolutions of the old and new states. This unphysical feature disappears when the Boltzmann collision operator generates states that were already present in the density matrix of the quantum system before the collision. Following these ideas, in this paper, we introduce an algorithm that models phonon-electron interactions through the Boltzmann collision operator without negative values of the charge density. The model only requires the exact knowledge, at all times, of the states that build the density matrix of the open system.
机译:在这项工作中,分析了玻尔兹曼碰撞算子在耗散量子传输中的使用。它在描述碰撞过程中密度矩阵的时间演化方面的数学作用可以理解为加和减状态的过程。我们表明,当旧状态(在碰撞之前建立与开放系统关联的密度矩阵)与由Boltzmann碰撞算子生成的其他状态不同时,量子模拟中可能会出现非物理结果。由于费米黄金定律,新产生的状态通常是动量或动能的本征态。然后,碰撞后电荷密度可能会出现负值。这个事实是由新旧状态的不同时间演变引起的。当玻耳兹曼碰撞算子产生碰撞前量子系统的密度矩阵中已经存在的状态时,这种非物理特征消失。遵循这些想法,在本文中,我们介绍了一种算法,该算法通过Boltzmann碰撞算子对声子-电子相互作用进行建模,而没有负电荷密度。该模型在任何时候都只需要确切了解构成开放系统密度矩阵的状态。

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