Shen Kaijun, Sun Kewei, Gelin Maxim F, Zhao Yang
School of Materials Science and Engineering, Nanyang Technological University, Singapore 639798, Singapore.
School of Science, Hangzhou Dianzi University, Hangzhou 310018, China.
Materials (Basel). 2024 Aug 20;17(16):4127. doi: 10.3390/ma17164127.
A fully quantum, numerically accurate methodology is presented for the simulation of the exciton dynamics and time-resolved fluorescence of cavity-tuned two-dimensional (2D) materials at finite temperatures. This approach was specifically applied to a monolayer WSe2 system. Our methodology enabled us to identify the dynamical and spectroscopic signatures of polaronic and polaritonic effects and to elucidate their characteristic timescales across a range of exciton-cavity couplings. The approach employed can be extended to simulation of various cavity-tuned 2D materials, specifically for exploring finite temperature nonlinear spectroscopic signals.
本文提出了一种全量子、数值精确的方法,用于模拟有限温度下腔调谐二维(2D)材料的激子动力学和时间分辨荧光。该方法专门应用于单层WSe2系统。我们的方法使我们能够识别极化子和极化激元效应的动力学和光谱特征,并阐明它们在一系列激子-腔耦合中的特征时间尺度。所采用的方法可以扩展到各种腔调谐二维材料的模拟,特别是用于探索有限温度下的非线性光谱信号。