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Variations on the 'exact factorization' theme

机译:“精确分解”主题的变化

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In a series of publications, Hardy Gross and co-workers have highlighted the interest of an "exact factorization" approach to the interacting electron-nuclei problem, be it time-independent or time-dependent. In this approach, an effective potential governs the dynamics of the nuclei such that the resulting N-body nuclear density is in principle exact. This contrasts with the more usual adiabatic approach, where the effective potential leads to an approximate nuclear density. Inspired by discussions with Hardy, we explore the factorization idea for arbitrary many-body Hamiltonians, generalizing the electron-nuclei case, with a focus on the static case. While the exact equations do not lead to any practical advantage, they are illuminating, and may therefore constitute a suitable starting point for approximations. In particular, we find that unitary transformations that diagonalize the coupling term for one of the sub-systems make exact factorization appealing. The algorithms by which the equations for the separate subsystems can be solved in the time-independent case are also explored. We illustrate our discussions using the two-site Holstein model and the quantum Rabi model. Two factorization schemes are possible: one where the boson field feels a potential determined by the electrons, and the reverse exact factorization, where the electrons feel a potential determined by the bosons; both are explored in this work. A comparison with a self-energy approach is also presented.
机译:在一系列出版物中,Hardy总和同事强调了“确切分解”方法对相互作用的电子核问题的兴趣,是与时间无关或时间依赖的。在这种方法中,有效的潜力控制核的动态,使得由此产生的N体核密度原则上是精确的。这与更常见的绝热方法形成鲜明对比,其中有效潜力导致近似的核密度。灵感来自于耐寒的讨论,我们探讨了任意多体Hamiltonians的分解理念,概括了电子核案例,重点是静态案例。虽然确切方程不会导致任何实际优点,但它们是照明的,因此可以构成近似的合适起点。特别是,我们发现对角致抗衡耦合术语的酉变换,使子系统之一进行精确的分解吸引力。还探讨了单独子系统的方程的算法也可以在无关的情况下解决。我们说明了我们使用双地霍尔斯坦模型和量子Rabi模型的讨论。两种分解方案是可能的:玻色子场感觉到由电子确定的电位的一个,以及反向精确分解,其中电子感受到由玻色子决定的电位;两者都在这项工作中探索。还提出了与自我能量方法的比较。

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