Phase-dependent strategy to mimic quantum phase transitions

Yuan Zhou, Lianzhen Cao, Qing-Lan Wang, Changcheng Hu, Zhucheng Zhang, Wei Xiong
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Abstract

This study proposes a hybrid quantum system of an ensemble of collective spins coupled to a surface acoustic wave (SAW) cavity through a sideband design. Assisted by a dichromatic optical drive with a phase-dependent control, this spin ensemble can effectively mimic different types of long-range Lipkin–Meshkov–Glick (LMG) interactions and then undergo quantum phase transitions (QPTs) due to phase-induced spontaneous symmetry breaking (SSB). In addition, this phase-controlled scheme also ensures the dynamical preparation of the spin-squeezed state (SSS), which may be a useful application in quantum measurement. This study is a fresh attempt at quantum manipulation based on acoustic control and also provides a promising route toward useful applications in quantum information processing, especially the adiabatic preparation of multiparticle-entangled ground states via QPTs; i.e., the Greenberger–Horne–Zeilinger (GHZ) or W-type states.
相依赖策略模拟量子相变
本研究提出了一种通过边带设计耦合到表面声波腔的集体自旋系综混合量子系统。在相位依赖控制的二色光驱的辅助下,该自旋系综可以有效地模拟不同类型的远距离Lipkin-Meshkov-Glick (LMG)相互作用,然后由于相位诱导自发对称破缺(SSB)而经历量子相变(QPTs)。此外,这种相位控制方案还保证了自旋压缩态(SSS)的动态制备,这可能在量子测量中有一个有用的应用。本研究是基于声学控制的量子操作的新尝试,也为量子信息处理,特别是通过qpt绝热制备多粒子纠缠基态提供了一条有前途的途径;也就是greenberger - horn - zeilinger (GHZ)或w型态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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