Yu Jiabin, Liu Chao-Xing
Department of Physics, the Pennsylvania State University, University Park, PA, 16802, USA.
Nat Commun. 2020 May 8;11(1):2290. doi: 10.1038/s41467-020-16058-2.
Finding new physical responses that signal topological quantum phase transitions is of both theoretical and experimental importance. Here, we demonstrate that the piezoelectric response can change discontinuously across a topological quantum phase transition in two-dimensional time-reversal invariant systems with spin-orbit coupling, thus serving as a direct probe of the transition. We study all gap closing cases for all 7 plane groups that allow non-vanishing piezoelectricity, and find that any gap closing with 1 fine-tuning parameter between two gapped states changes either the Z invariant or the locally stable valley Chern number. The jump of the piezoelectric response is found to exist for all these transitions, and we propose the HgTe/CdTe quantum well and BaMnSb as two potential experimental platforms. Our work provides a general theoretical framework to classify topological quantum phase transitions, and reveals their ubiquitous relation to the piezoelectric response.
寻找能表征拓扑量子相变的新物理响应具有理论和实验两方面的重要性。在此,我们证明在具有自旋轨道耦合的二维时间反演不变系统中,压电响应可在拓扑量子相变处发生不连续变化,从而可作为该相变的直接探测手段。我们研究了所有允许非零压电性的7个平面群的所有能隙关闭情况,发现两个带隙态之间由一个微调参数控制的任何能隙关闭都会改变Z不变量或局部稳定的谷陈数。所有这些相变都存在压电响应的跃变,并且我们提出碲化汞/碲化镉量子阱和钡锰锑作为两个潜在的实验平台。我们的工作提供了一个用于分类拓扑量子相变的通用理论框架,并揭示了它们与压电响应的普遍关系。