论文标题

具有高阶带反面的拓扑相的量子动力学表征和仿真

Quantum dynamical characterization and simulation of topological phases with high-order band inversion surfaces

论文作者

Yu, Xiang-Long, Ji, Wentao, Zhang, Lin, Wang, Ya, Wu, Jiansheng, Liu, Xiong-Jun

论文摘要

如何表征拓扑量子阶段是拓扑问题广泛领域的一个基本问题。从降低方法的方法中,我们提出了高阶带反向表面(BISS)的概念,该概念使最佳方案能够通过远程平衡量子动力​​学来表征平衡拓扑阶段,并进一步报告实验模拟。我们表明,在高阶Biss中,D维(DD)拓扑阶段的表征可以还原为较低维的拓扑不变性,其中N阶Bis是动量空间中的(D-N)D界面。在从琐碎阶段到拓扑结构的系统淬灭系统时,我们揭示了高阶动力学散装对应关系,量子动力学以任意Nth-tord Biss表现出非琐碎的拓扑模式,该模式普遍与之相对应,并因此表征了后Quequench Hamiltonian的平均拓扑阶段。这种高阶动力学散装对应关系提供了具有基本优势的新的和最佳的动力学方案,以模拟和检测拓扑状态,在拓扑状态下,通过零维的最高级别BIS,拓扑相的检测仅取决于最小的测量。我们通过实验构建具有自旋圆盘的量子模拟器,通过一一模拟每种动量来研究3D手性拓扑绝缘子,并测量高阶动力学散装对应关系,并通过表现出最高级别的BISS来表现拓扑表征的优势。

How to characterize topological quantum phases is a fundamental issue in the broad field of topological matter. From a dimension reduction approach, we propose the concept of high-order band inversion surfaces (BISs) which enable the optimal schemes to characterize equilibrium topological phases by far-from-equilibrium quantum dynamics, and further report the experimental simulation. We show that characterization of a d-dimensional (dD) topological phase can be reduced to lower-dimensional topological invariants in the high-order BISs, of which the nth-order BIS is a (d-n)D interface in momentum space. In quenching the system from trivial phase to topological regime, we unveil a high-order dynamical bulk-surface correspondence that the quantum dynamics exhibits nontrivial topological pattern in arbitrary nth-order BISs, which universally corresponds to and so characterizes the equilibrium topological phase of the post-quench Hamiltonian. This high-order dynamical bulk-surface correspondence provides new and optimal dynamical schemes with fundamental advantages to simulate and detect topological states, in which through the highest-order BISs that are of zero dimension, the detection of topological phase relies on only minimal measurements. We experimentally build up a quantum simulator with spin qubits to investigate a 3D chiral topological insulator through emulating each momentum one by one and measure the high-order dynamical bulk-surface correspondence, with the advantages of topological characterization via highest-order BISs being demonstrated.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源