Shen H Z, Qin M, Shao X Q, Yi X X
Center for Quantum Sciences and School of Physics, Northeast Normal University, Changchun 130024, China.
School of Physics and Optoelectronic Technology Dalian University of Technology, Dalian 116024, China.
Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Nov;92(5):052122. doi: 10.1103/PhysRevE.92.052122. Epub 2015 Nov 17.
It is well-known that the quantum linear response theory is based on the first-order perturbation theory for a system in thermal equilibrium. Hence, this theory breaks down when the system is in a steady state far from thermal equilibrium and the response up to higher order in perturbation is not negligible. In this paper, we develop a nonlinear response theory for such quantum open system. We first formulate this theory in terms of general susceptibility, after which we apply it to the derivation of Hall conductance for open system at finite temperature. As an example, the Hall conductance of the two-band model is derived. Then we calculate the Hall conductance for a two-dimensional ferromagnetic electron gas and a two-dimensional lattice model. The calculations show that the transition points of topological phase are robust against the environment. Our results provide a promising platform for the coherent manipulation of the nonlinear response in quantum open system, which has potential applications for quantum information processing and statistical physics.
众所周知,量子线性响应理论基于热平衡系统的一阶微扰理论。因此,当系统处于远离热平衡的稳态且微扰中的高阶响应不可忽略时,该理论就会失效。在本文中,我们为这样的量子开放系统发展了一种非线性响应理论。我们首先根据一般的磁化率来阐述该理论,之后将其应用于有限温度下开放系统霍尔电导的推导。作为一个例子,推导了两能带模型的霍尔电导。然后我们计算了二维铁磁电子气和二维晶格模型的霍尔电导。计算结果表明拓扑相的转变点对环境具有鲁棒性。我们的结果为量子开放系统中非线性响应的相干操控提供了一个有前景的平台,这在量子信息处理和统计物理方面具有潜在应用。