Tamascelli Dario
Dipartimento di Fisica "Aldo Pontremoli", Università degli Studi di Milano, via Celoria 16, 20133 Milano, Italy.
Institut für Theoretische Physik and Center for Integrated Quantum Science and Technology (IQST), Albert-Einstein-Allee 11, Universität Ulm, 89069 Ulm, Germany.
Entropy (Basel). 2020 Nov 19;22(11):1320. doi: 10.3390/e22111320.
The chain mapping of structured environments is a most powerful tool for the simulation of open quantum system dynamics. Once the environmental bosonic or fermionic degrees of freedom are unitarily rearranged into a one dimensional structure, the full power of Density Matrix Renormalization Group (DMRG) can be exploited. Beside resulting in efficient and numerically exact simulations of open quantum systems dynamics, chain mapping provides an unique perspective on the environment: the interaction between the system and the environment creates perturbations that travel along the one dimensional environment at a finite speed, thus providing a natural notion of light-, or causal-, cone. In this work we investigate the transport of excitations in a chain-mapped bosonic environment. In particular, we explore the relation between the environmental spectral density shape, parameters and temperature, and the dynamics of excitations along the corresponding linear chains of quantum harmonic oscillators. Our analysis unveils fundamental features of the environment evolution, such as localization, percolation and the onset of stationary currents.
结构化环境的链映射是模拟开放量子系统动力学的一种极其强大的工具。一旦环境玻色子或费米子自由度被幺正重排为一维结构,就可以利用密度矩阵重整化群(DMRG)的全部威力。除了能高效且数值精确地模拟开放量子系统动力学外,链映射还为环境提供了一个独特的视角:系统与环境之间的相互作用产生的微扰以有限速度沿一维环境传播,从而提供了光锥或因果锥的自然概念。在这项工作中,我们研究了链映射玻色子环境中的激发输运。特别地,我们探讨了环境谱密度形状、参数和温度与沿着相应量子谐振子线性链的激发动力学之间的关系。我们的分析揭示了环境演化的基本特征,如局域化、渗流和稳态电流的出现。