具有符号反转近邻相互作用的混合场伊辛模型的表面临界性

IF 2.9 2区 物理与天体物理 Q2 Physics and Astronomy Physical Review A Pub Date : 2024-09-17 DOI:10.1103/physreva.110.033319
Yuki Nakamura, Ryui Kaneko, Ippei Danshita
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引用次数: 0

摘要

光学镊子阵列中的雷德贝格原子被用作具有纵向和横向场的自旋-1/2 反铁磁伊辛模型的量子模拟器。我们建议如何在雷德贝格原子系统中实现与最近邻原子符号相反的最近邻相互作用。我们证明,这可以通过弱耦合一个雷德贝格态和另一个雷德贝格态来实现。我们进一步研究了与反铁磁相和顺磁相之间的一阶量子相变相关的表面临界性,它是由于符号反转的 NNN 相互作用而出现的。根据微观模型,我们推导出金兹堡-朗道(GL)方程,该方程描述了过渡附近反铁磁阶参数的静态和动态特性。通过使用分析 GL 理论和基于均场理论的数值方法,我们计算了系统边界附近的阶次参数,结果表明阶次参数的愈合长度呈对数发散,这标志着表面临界。
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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Surface criticality in the mixed-field Ising model with sign-inverted next-nearest-neighbor interaction
Rydberg atoms in an optical tweezer array have been used as a quantum simulator of the spin-1/2 antiferromagnetic Ising model with longitudinal and transverse fields. We suggest how to implement the next-nearest-neighbor (NNN) interaction the sign of which is opposite to that of the nearest-neighbor one in the Rydberg atom systems. We show that this can be achieved by weakly coupling one Rydberg state with another Rydberg state. We further study the surface criticality associated with the first-order quantum phase transition between the antiferromagnetic and paramagnetic phases, which emerges due to the sign-inverted NNN interaction. From the microscopic model, we derive a Ginzburg-Landau (GL) equation, which describes static and dynamic properties of the antiferromagnetic order parameter near the transition. Using both analytical GL theory and numerical method based on a mean-field theory, we calculate the order parameter in the proximity of a boundary of the system in order to show that the healing length of the order parameter logarithmically diverges, signaling the surface criticality.
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来源期刊
Physical Review A
Physical Review A 物理-光学
CiteScore
5.40
自引率
24.10%
发文量
0
审稿时长
2.2 months
期刊介绍: Physical Review A (PRA) publishes important developments in the rapidly evolving areas of atomic, molecular, and optical (AMO) physics, quantum information, and related fundamental concepts. PRA covers atomic, molecular, and optical physics, foundations of quantum mechanics, and quantum information, including: -Fundamental concepts -Quantum information -Atomic and molecular structure and dynamics; high-precision measurement -Atomic and molecular collisions and interactions -Atomic and molecular processes in external fields, including interactions with strong fields and short pulses -Matter waves and collective properties of cold atoms and molecules -Quantum optics, physics of lasers, nonlinear optics, and classical optics
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