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氧化亚铜中的里德堡激子:一个具有经典混沌的两粒子系统。

Rydberg excitons in cuprous oxide: A two-particle system with classical chaos.

作者信息

Ertl Jan, Rentschler Sebastian, Main Jörg

机构信息

Institut für Theoretische Physik I, Universität Stuttgart, 70550 Stuttgart, Germany.

出版信息

Chaos. 2024 Oct 1;34(10). doi: 10.1063/5.0210792.

Abstract

When an electron in a semiconductor gets excited to the conduction band, the missing electron can be viewed as a positively charged particle, the hole. Due to the Coulomb interaction, electrons and holes can form a hydrogen-like bound state called the exciton. For cuprous oxide, a Rydberg series up to high principle quantum numbers has been observed by Kazimierczuk et al. [Nature 514, 343 (2014)] with the extension of excitons up to the μm-range. In this region, the correspondence principle should hold and quantum mechanics turn into classical dynamics. Due to the complex valence band structure of Cu2O, classical dynamics deviates from a purely hydrogen-like behavior. The uppermost valence band in cuprous oxide splits into various bands resulting in yellow and green exciton series. Since the system exhibits no spherical symmetry, the angular momentum is not conserved. Thus, the classical dynamics becomes non-integrable, resulting in the possibility of chaotic motion. Here, we investigate the classical dynamics of the yellow and green exciton series in cuprous oxide for two-dimensional orbits in the symmetry planes as well as fully three-dimensional orbits. Our analysis reveals substantial differences between the dynamics of the yellow and green exciton series. While it is mostly regular for the yellow series, large regions in phase space with classical chaos do exist for the green exciton series.

摘要

当半导体中的一个电子被激发到导带时,缺失的电子可被视为一个带正电的粒子,即空穴。由于库仑相互作用,电子和空穴可以形成一种类氢束缚态,称为激子。对于氧化亚铜,Kazimierczuk等人[《自然》514, 343 (2014)]观察到了一个高达高主量子数的里德堡系列,激子延伸至微米范围。在这个区域,对应原理应该成立,量子力学转变为经典动力学。由于Cu2O复杂的价带结构,经典动力学偏离了纯粹的类氢行为。氧化亚铜中最上面的价带分裂成多个能带,产生了黄色和绿色激子系列。由于该系统不具有球对称性,角动量不守恒。因此,经典动力学变得不可积,导致了混沌运动的可能性。在这里,我们研究了氧化亚铜中黄色和绿色激子系列在对称平面内的二维轨道以及完全三维轨道上的经典动力学。我们的分析揭示了黄色和绿色激子系列动力学之间的显著差异。虽然黄色系列大多是规则的,但绿色激子系列在相空间中存在大片具有经典混沌的区域。

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