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非厄米谐振子中的量子相变

Quantum phase transitions in nonhermitian harmonic oscillator.

作者信息

Znojil Miloslav

机构信息

Department of Physics, Faculty of Science, University of Hradec Králové, Rokitanského 62, 50003, Hradec Králové, Czech Republic.

The Czech Academy of Sciences, Nuclear Physics Institute, Hlavní 130, 250 68, Řež, Czech Republic.

出版信息

Sci Rep. 2020 Oct 28;10(1):18523. doi: 10.1038/s41598-020-75468-w.

Abstract

The Stone theorem requires that in a physical Hilbert space [Formula: see text] the time-evolution of a stable quantum system is unitary if and only if the corresponding Hamiltonian H is self-adjoint. Sometimes, a simpler picture of the evolution may be constructed in a manifestly unphysical Hilbert space [Formula: see text] in which H is nonhermitian but [Formula: see text]-symmetric. In applications, unfortunately, one only rarely succeeds in circumventing the key technical obstacle which lies in the necessary reconstruction of the physical Hilbert space [Formula: see text]. For a [Formula: see text]-symmetric version of the spiked harmonic oscillator we show that in the dynamical regime of the unavoided level crossings such a reconstruction of [Formula: see text] becomes feasible and, moreover, obtainable by non-numerical means. The general form of such a reconstruction of [Formula: see text] enables one to render every exceptional unavoided-crossing point tractable as a genuine, phenomenologically most appealing quantum-phase-transition instant.

摘要

斯通定理要求,在一个物理希尔伯特空间[公式:见正文]中,稳定量子系统的时间演化是幺正的,当且仅当相应的哈密顿量H是自伴的。有时,在一个明显非物理的希尔伯特空间[公式:见正文]中可以构建一个更简单的演化图景,其中H是非厄米的但[公式:见正文]对称。不幸的是,在应用中,人们很少能成功绕过关键的技术障碍,即对物理希尔伯特空间[公式:见正文]进行必要的重构。对于加性谐波振荡器的[公式:见正文]对称版本,我们表明,在不可避免的能级交叉的动力学区域中,对[公式:见正文]的这种重构变得可行,而且可以通过非数值方法获得。这种对[公式:见正文]的重构的一般形式使人们能够将每个特殊的不可避免交叉点作为一个真正的、从现象学角度最具吸引力的量子相变瞬间来处理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d9d/7595148/297ca6e00ff1/41598_2020_75468_Fig1_HTML.jpg

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