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Nonequilibrium Quantum Systems: Divergence between Global and Local Descriptions

机译:非平衡量子系统:全局描述与局部描述之间的差异

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Even photosynthesis—the most basic natural phenomenon underlying life on Earth—involves the nontrivial processing of excitations at the pico- and femtosecond scales during light-harvesting. The desire to understand such natural phenomena, as well as interpret the output from ultrafast experimental probes, creates an urgent need for accurate quantitative theories of open quantum systems. However it is unclear how best to generalize the well-established assumptions of an isolated system, particularly under nonequilibrium conditions. Here we compare two popular approaches: a description in terms of a direct product of the states of each individual system (i.e., alocalapproach) versus the use of new states resulting from diagonalizing the whole Hamiltonian (i.e., aglobalapproach). The main difference lies in finding suitable operators to derive the Lindbladian and hence the master equation. We show that their equivalence fails when the system is open, in particular under the experimentally ubiquitous condition of a temperature gradient. By solving for the steady state populations and calculating the heat flux as a test observable, we uncover stark differences between the formulations. This divergence highlights the need to establish rigorous ranges of applicability for such methods in modeling nanoscale transfer phenomena—including during the light-harvesting process in photosynthesis.
机译:甚至光合作用是地球生命中最基本的自然现象,也涉及光捕获过程中皮秒和飞秒级的激发的非平凡处理。理解此类自然现象以及解释超快实验探针的输出的愿望,迫切需要对开放量子系统的准确定量理论进行研究。但是,尚不清楚如何最好地概括孤立系统的公认假设,尤其是在非平衡条件下。在这里,我们比较了两种流行的方法:用每个单独系统的状态(即局部方法)的状态的直接乘积进行描述,以及对角化整个哈密顿量(即全局方法)所产生的新状态的使用。主要区别在于找到合适的算子来推导Lindbladian,从而推导主方程。我们表明,当系统打开时,它们的等效性会失效,尤其是在温度梯度的实验普遍存在的条件下。通过求解稳态种群并计算热通量作为可观察的测试,我们发现了配方之间的明显差异。这种差异突出表明,需要为模拟纳米级转移现象的方法(包括在光合作用的光收集过程中)建立严格的适用范围。

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