arXiv · 2410.20654
Quantum Interference and Optical Tuning of Self-Trapped Exciton State in Double Halide Perovskite
Abstract
Self-trapped excitons (STEs), renowned for their unique radiative properties, have been harnessed in diverse photonic devices. Yet, a full comprehension and manipulation of STEs remain elusive. In this study, we present novel experimental and theoretical evidence of the hybrid nature and optical tuning of the STEs state in Cs2Ag0.4Na0.6InCl6. The detection of Fano resonance in the laser energy-dependent Raman and photoluminescence spectra indicates the emergence of an exciton-phonon hybrid state, a result of the robust quantum interference between the discrete phonon and continuous exciton states. Moreover, we showcase the ability to continuously adjust this hybrid state with the energy and intensity of the laser field. These significant findings lay the foundation for a comprehensive understanding of the nature of STE and its potential for state control.
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Kai-Xuan Xu, Xin-bao Liu, Simin Pang, Zhe Zhang, Yubin Wang, Jiajun Luo, Jiang Tang, Qihua Xiong, Sheng Meng, Shiwu Gao, Jun Zhang. 2024-10-28. Quantum Interference and Optical Tuning of Self-Trapped Exciton State in Double Halide Perovskite. https://arxiv.org/abs/2410.20654
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