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Multiple topological transitions and spectral singularities in non-Hermitian Floquet systems
被引:0
|作者:
Zhu, Weiwei
[1
,2
,3
]
Zhou, Longwen
[1
,2
,3
]
Li, Linhu
[4
]
Gong, Jiangbin
[5
,6
]
机构:
[1] College of Physics and Optoelectronic Engineering, Ocean University of China, Qingdao,266100, China
[2] Eng. Research Center of Advanced Marine Physical Instruments and Equipment of Education Ministry, Ocean University of China, Qingdao,266100, China
[3] Qingdao Key Laboratory for Optics Photoelectronics, Ocean University of China, Qingdao,266100, China
[4] Guangdong Prov. Key Laboratory of Quantum Metrology and Sensing School of Physics and Astronomy, Sun Yat-Sen University (Zhuhai Campus), Zhuhai,519082, China
[5] Department of Physics, National University of Singapore, 117551, Singapore
[6] Centre for Quantum Technologies, National University of Singapore, 117543, Singapore
基金:
中国国家自然科学基金;
关键词:
D O I:
10.1103/PhysRevB.110.155413
中图分类号:
学科分类号:
摘要:
The interplay between Floquet driving and non-Hermitian gain/loss could give rise to intriguing phenomena including topological funneling of light, edge-state delocalization, anomalous topological transitions and Floquet non-Hermitian skin effects. In this work, we uncover two unique phenomena in Floquet systems caused by gain and loss. First, multiple topological transitions from anomalous Floquet second-order topological insulators to anomalous Floquet first-order topological insulators and then to normal insulators can be induced by gain and loss. Interestingly, the resulting anomalous Floquet insulators further carry hybrid skin-Topological boundary modes, which could either be fully localized or localized to different edges at different time slices and traversing along all edges in a single driving period. The topological phase transitions are also shown to be detectable through studies of transmission properties in the setting of coupled ring resonators. Second, gain and loss are found to induce singularities in the Floquet spectral, around which anomalous transmissions at flat quasienergy bands are predicted. These discoveries not only enhanced our understanding of topological matter and phase transitions in driven non-Hermitian systems, but also promoted their experimental realizations in optical and acoustic settings. © 2024 American Physical Society.
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