论文标题

在拓扑相变的对称性破裂

Symmetry breaking at a topological phase transition

论文作者

Faulkner, Michael F.

论文摘要

自发对称性破坏是物理学中的基础概念。 In condensed matter, it characterizes conventional continuous phase transitions but is absent at topological phase transitions such as the Berezinskii-Kosterlitz-Thouless (BKT) transition - as in the BKT case the expected norm (i.e., the magnitude) of the $U(1)$ order parameter vanishes in the thermodynamic limit at all nonzero temperatures.但是,在许多不同的BKT实验中,已经观察到与低温破碎的对称性一致的现象。例子包括有关超导薄膜的最新实验以及关于约瑟夫森连接二维阵列的开创性作品。虽然上述热力学极限的无法访问在有限系统中部分解释了这一悖论,但在BKT转换处的对称性破坏的完整动力学框架仍未解决。在这里,我们通过介绍更广泛的对称性破坏的更广泛的概念来提供这一点。这既包含自发对称性的破坏,又允许在热力学极限下的预期订单参数的预期范围降至零,前提是其定向相波动渐近。我们在低温BKT相中证明了这种渐近的慢速定向混合。这明确表明,该顺序参数任意选择在热力学极限中定义明确的方向,从而预测了与任意大型实验性BKT系统中预期的规范相比可忽略不计的相比。我们的结果为各种实验BKT系统阵列跨越定向混合时间尺度提供了模型。我们建议各种实验。

Spontaneous symmetry breaking is a foundational concept in physics. In condensed matter, it characterizes conventional continuous phase transitions but is absent at topological phase transitions such as the Berezinskii-Kosterlitz-Thouless (BKT) transition - as in the BKT case the expected norm (i.e., the magnitude) of the $U(1)$ order parameter vanishes in the thermodynamic limit at all nonzero temperatures. Phenomena consistent with low-temperature broken symmetry have been observed, however, in many different BKT experiments. Examples include recent experiments on superconducting films and the seminal work on two-dimensional arrays of Josephson junctions. While the inaccessibility of the above thermodynamic limit partially explains this paradox in finite systems, the full dynamical framework of symmetry breaking at the BKT transition remains unresolved. Here we provide this by introducing the broader concept of general symmetry breaking. This encompasses both spontaneous symmetry breaking and the BKT case by allowing the expected norm of the order parameter to go to zero in the thermodynamic limit, provided its directional phase fluctuations are asymptotically smaller. We demonstrate this asymptotically slow directional mixing in the low-temperature BKT phase. This explicitly shows that the order parameter arbitrarily chooses some well-defined direction in the thermodynamic limit, predicting negligible phase fluctuations compared to the expected norm in arbitrarily large experimental BKT systems. Our results provide a model for directional mixing timescales across the diverse array of experimental BKT systems. We suggest various experiments.

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