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通过非时序关联器对平衡和动态量子相变的实验观测

Experimental Observation of Equilibrium and Dynamical Quantum Phase Transitions via Out-of-Time-Ordered Correlators.

作者信息

Nie Xinfang, Wei Bo-Bo, Chen Xi, Zhang Ze, Zhao Xiuzhu, Qiu Chudan, Tian Yu, Ji Yunlan, Xin Tao, Lu Dawei, Li Jun

机构信息

Shenzhen Institute for Quantum Science and Engineering and Department of Physics, Southern University of Science and Technology, Shenzhen 518055, China.

Guangdong Provincial Key Laboratory of Quantum Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, China.

出版信息

Phys Rev Lett. 2020 Jun 26;124(25):250601. doi: 10.1103/PhysRevLett.124.250601.

Abstract

The out-of-time-ordered correlators (OTOC), a fundamental concept for quantifying quantum information scrambling, has recently been suggested to be an order parameter to dynamically detect both equilibrium quantum phase transitions (EQPTs) and dynamical quantum phase transitions (DQPTs). Here we report the first experimental observation of EQPTs and DQPTs in a quantum spin chain via quench dynamics of OTOC on a nuclear magnetic resonance quantum simulator. We observe that the quench dynamics of the OTOC can unambiguously detect the DQPTs and the equilibrium critical point, while conventional order parameters such as the longitudinal magnetization can not. Moreover, we investigate the two-body correlations throughout the quench dynamics, and find that OTOC can extract the equilibrium critical point with higher accuracy and is more robust to decoherence than that of two-body correlation. Our experiment paves a way for experimentally investigating DQPTs through OTOCs and for studying the EQPTs through the nonequilibrium quantum quench dynamics with quantum simulators.

摘要

乱序关联函数(OTOC)是用于量化量子信息搅乱的一个基本概念,最近有人提出它可作为一个序参量,用于动态检测平衡量子相变(EQPT)和动力学量子相变(DQPT)。在此,我们报告了在核磁共振量子模拟器上,通过OTOC的猝灭动力学在量子自旋链中首次对EQPT和DQPT进行的实验观测。我们观察到,OTOC的猝灭动力学能够明确检测出DQPT和平衡临界点,而诸如纵向磁化强度等传统序参量则无法做到。此外,我们研究了整个猝灭动力学过程中的两体关联,发现OTOC能够以更高的精度提取平衡临界点,并且比两体关联对退相干更具鲁棒性。我们的实验为通过OTOC对DQPT进行实验研究以及利用量子模拟器通过非平衡量子猝灭动力学研究EQPT铺平了道路。

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