Symmetry-preserving quadratic Lindbladian and dissipation driven topological transitions in Gaussian states.

Liang Mao, Fan Yang, Hui Zhai
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Abstract

The dynamical evolution of an open quantum system can be governed by the Lindblad equation of the density matrix. In this paper, we propose to characterize the density matrix topology by the topological invariant of its modular Hamiltonian. Since the topological classification of such Hamiltonians depends on their symmetry classes, a primary issue we address is determining the requirement for the Lindbladian operators, under which the modular Hamiltonian can preserve its symmetry class during the dynamical evolution. We solve this problem for the fermionic Gaussian state and for the modular Hamiltonian being a quadratic operator of a set of fermionic operators. When these conditions are satisfied, along with a nontrivial topological classification of the symmetry class of the modular Hamiltonian, a topological transition can occur as time evolves. We present two examples of dissipation-driven topological transitions where the modular Hamiltonian lies in the AIII class withU(1) symmetry and the DIII class withoutU(1) symmetry. By a finite size scaling, we show that this density matrix topology transition occurs at a finite time. We also present the physical signature of this transition.

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高斯态中的对称保全二次林德布拉甸和耗散驱动拓扑转变。
开放量子系统的动态演化可由密度矩阵的林德布拉德方程控制。在本文中,我们建议通过其模块化哈密顿的拓扑不变量来描述密度矩阵的拓扑特征。由于这种哈密顿的拓扑分类取决于其对称性类别,我们要解决的一个主要问题是确定林德布拉德算子的要求,在此要求下,模块哈密顿在动力学演化过程中可以保持其对称性类别。我们解决了费米高斯态和模块哈密顿是一组费米算子的二次算子的问题。当这些条件得到满足时,再加上模态哈密顿对称类的非难拓扑分类,拓扑转变就会随着时间的演化而发生。我们给出了两个耗散驱动拓扑转变的例子,其中模块哈密顿分别位于具有 U(1) 对称性的 AIII 类和不具有 U(1) 对称性的 DIII 类。通过有限尺寸缩放,我们证明了这种密度矩阵拓扑转变发生在有限时间内。我们还提出了这一转变的物理特征。
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