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分子系统中电子非绝热 Thouless 泵浦的第一性原理证明

First-Principles Demonstration of Nonadiabatic Thouless Pumping of Electrons in a Molecular System.

作者信息

Zhou Ruiyi, Yost Dillon C, Kanai Yosuke

机构信息

Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599, United States.

Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

出版信息

J Phys Chem Lett. 2021 May 20;12(19):4496-4503. doi: 10.1021/acs.jpclett.1c01037. Epub 2021 May 6.

Abstract

We demonstrate nonadiabatic Thouless pumping of electrons in -polyacetylene in the framework of Floquet engineering using first-principles theory. We identify the regimes in which the quantized pump is operative with respect to the driving electric field for a time-dependent Hamiltonian. By employing the time-dependent maximally localized Wannier functions in real-time time-dependent density functional theory simulation, we connect the winding number, a topological invariant, to a molecular-level understanding of the quantized pumping. While the pumping dynamics constitutes the opposing movement of the Wannier functions that represent both double and single bonds, the resulting current is unidirectional due to the greater number of double-bond electrons. Using a gauge-invariant formulation called dynamical transition orbitals, an alternative viewpoint on the nonequilibrium dynamics is obtained in terms of the particle-hole excitation. A time-dependent transition orbital is found to be largely responsible for the observed quantized pumping. In this representation, the pumping dynamics manifests itself in the dynamics of this single orbital as it undergoes changes from its π bonding orbital character at equilibrium to acquiring resonance and antibonding character in the driving cycle. The work demonstrates the Floquet engineering of the nonadiabatic topological state in an extended molecular system, paving the way for experimental realization of the new quantum material phase.

摘要

我们利用第一性原理理论,在弗洛凯工程框架下展示了聚乙炔中电子的非绝热苏勒泵浦。对于含时哈密顿量,我们确定了量子化泵浦相对于驱动电场起作用的区域。通过在实时含时密度泛函理论模拟中采用含时最大局域化万尼尔函数,我们将拓扑不变量缠绕数与量子化泵浦的分子层面理解联系起来。虽然泵浦动力学由代表双键和单键的万尼尔函数的反向运动构成,但由于双键电子数量较多,产生的电流是单向的。使用一种称为动态跃迁轨道的规范不变表述,从粒子 - 空穴激发的角度获得了关于非平衡动力学的另一种观点。发现一个含时跃迁轨道在很大程度上导致了观测到的量子化泵浦。在这种表示中,泵浦动力学表现为这个单轨道的动力学,它从平衡时的π键轨道特征转变为在驱动周期中获得共振和反键特征。这项工作展示了扩展分子系统中非绝热拓扑态的弗洛凯工程,为新量子材料相的实验实现铺平了道路。

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