论文标题
在真实材料中进行工程多体定位的途径
A route towards engineering many-body localization in real materials
论文作者
论文摘要
相互作用和混乱在量子中的相互作用许多身体系统可能导致许多身体定位(MBL)的难以捉摸的现象。在合成量子多体系统的精确控制条件下观察到了它,但是在实际量子材料中检测到它似乎具有挑战性。在这项工作中,我们提出了合成真实材料的途径,该材料通过在实验室中混合不同种类的材料来显示许多人体定位的特征。为了提供我们方法功能的证据,我们执行基于张量的基于网络的数值分析,以研究构成材料的各种掺杂比的影响。此外,为了为实验提供指导,我们研究了实际候选材料的不同选择。为了解决如何在加热下实现稳定性的挑战,我们研究了电子波耦合的效果,重点是有效地嵌入一,二维和三维晶格中的一维材料。我们分析了这种耦合如何影响MBL,并提供了电子自由度与晶格振动之间相互作用的直观显微镜描述。我们的工作为成分材料的性质的必要条件提供了指南,因此是实验合成MBL签名的实际量子材料的路线图。
The interplay of interactions and disorder in a quantum many body system may lead to the elusive phenomenon of many body localization (MBL). It has been observed under precisely controlled conditions in synthetic quantum many-body systems, but to detect it in actual quantum materials seems challenging. In this work, we present a path to synthesize real materials that show signatures of many body localization by mixing different species of materials in the laboratory. To provide evidence for the functioning of our approach, we perform a detailed tensor-network based numerical analysis to study the effects of various doping ratios of the constituting materials. Moreover, in order to provide guidance to experiments, we investigate different choices of actual candidate materials. To address the challenge of how to achieve stability under heating, we study the effect of the electron-phonon coupling, focusing on effectively one dimensional materials embedded in one, two and three dimensional lattices. We analyze how this coupling affects the MBL and provide an intuitive microscopic description of the interplay between the electronic degrees of freedom and the lattice vibrations. Our work provides a guideline for the necessary conditions on the properties of the ingredient materials and, as such, serves as a road map to experimentally synthesizing real quantum materials exhibiting signatures of MBL.