物理
塞曼效应
量子相变
量子
级联
塞曼能源
相图
量子相
解耦(概率)
量子临界点
相(物质)
凝聚态物理
多临界点
激发
动态解耦
相变
量子力学
临界点(数学)
磁场
量子涨落
联轴节(管道)
统计物理学
量子系统
临界指数
作者
Hao Jiang,Zeyun Shi,Yao Ou,Fazal Badshah,Xiao Zhou,Ya-Wen Li,Dong Yan Lü,Kai Chen,Cheng Chen,Yuan Zhou
出处
期刊:Physica Scripta
[IOP Publishing]
日期:2026-03-06
卷期号:101 (11): 115108-115108
被引量:4
标识
DOI:10.1088/1402-4896/ae4e6a
摘要
Abstract We theoretically investigate the quantum phase transitions of a hybrid quantum system consisting of an ensemble of nitrogen-vacancy (NV) centers coupled to two microwave cavity resonators. By leveraging the Zeeman effect with a static magnetic field, we achieve a tunable switch between different three-level Dicke model configurations. We map out the global ground-state phase diagram and identify three distinct operating regimes: (i) a V type regime characterized by the competition between two superradiant phases, (ii) an effective two-level regime emerging near the level-crossing point due to channel decoupling and (iii) a cascade Ξ type regime induced by level inversion. Particularly in the cascade regime, we analyze a mechanism of ‘sequential phase transition’, where the onset of the second superradiant phase is strictly contingent upon the condensation of the first channel. This mechanism leads to a nested structure in the phase diagram, which is fundamentally distinct from the phase competition observed in V type systems. Furthermore, by calculating the excitation spectra, we observe the emergence of soft modes at continuous critical points, establishing the second-order quantum nature of the relevant transitions. Our proposal provides a feasible solid-state platform for simulating multicritical phenomena and realizing controllable light–matter interactions.
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