Sousa M G, Costa R F P, Neto G D de Moraes, Vernek E
Instituto de Física, Universidade Federal de Uberlândia, Uberlândia, Minas Gerais, 38400-902, Brazil.
Department of Physics, Zhejiang Normal University, Jinhua, 321004, Zhejiang, P. R. China.
Sci Rep. 2024 Oct 25;14(1):25315. doi: 10.1038/s41598-024-74966-5.
The principles of ergodicity and thermalization constitute the foundation of statistical mechanics, positing that a many-body system progressively loses its local information as it evolves. Nevertheless, these principles can be disrupted when thermalization dynamics lead to the conservation of local information, as observed in the phenomenon known as many-body localization. Quantum spin chains provide a fundamental platform for exploring the dynamics of closed interacting quantum many-body systems. This study explores the dynamics of a spin chain with within the [Formula: see text] incorporating a non-uniform magnetic field and single-ion anisotropy. Through the use of exact numerical diagonalization, we unveil that a nearly constant-gradient magnetic field suppresses thermalization, a phenomenon termed Stark many-body localization (SMBL), previously observed in chains. Furthermore, our findings reveal that the sole presence of single-ion anisotropy is sufficient to prevent thermalization in the system. Interestingly, when the magnitudes of the magnetic field and anisotropy are comparable, they compete, favoring delocalization. Despite the potential hindrance of SMBL by single-ion anisotropy in this scenario, it introduces an alternative mechanism for localization. Our interpretation, considering local energetic constraints and resonances between degenerate eigenstates, not only provides insights into SMBL but also opens avenues for future experimental investigations into the enriched phenomenology of disordered free localized systems.
遍历性和热化原理构成了统计力学的基础,假定多体系统在演化过程中会逐渐失去其局部信息。然而,当热化动力学导致局部信息守恒时,这些原理可能会被打破,正如在多体局域化现象中所观察到的那样。量子自旋链为探索封闭相互作用量子多体系统的动力学提供了一个基本平台。本研究探索了在包含非均匀磁场和单离子各向异性的[公式:见原文]内具有[具体内容未给出]的自旋链的动力学。通过使用精确数值对角化,我们揭示了一个近乎恒定梯度的磁场会抑制热化,这种现象被称为斯塔克多体局域化(SMBL),此前在[具体链型未给出]链中已被观察到。此外,我们的研究结果表明,单离子各向异性的单独存在就足以防止系统热化。有趣的是,当磁场和各向异性的大小相当时,它们会相互竞争,有利于离域化。尽管在这种情况下单离子各向异性可能会对SMBL产生阻碍,但它引入了一种替代的局域化机制。我们基于局部能量约束和简并本征态之间共振的解释,不仅为SMBL提供了见解,还为未来对无序自由局域[具体系统未给出]系统丰富现象学的实验研究开辟了道路。