Zhang Xiao-Wei, Cao Ting
Department of Materials Science and Engineering, University of Washington, Seattle, WA 98195, United States of America.
J Phys Condens Matter. 2022 Apr 26;34(26). doi: 10.1088/1361-648X/ac6649.
We investigate the spin-nonconserving relaxation channel of excitons by their couplings with phonons in two-dimensional transition metal dichalcogenides usingapproaches. Combining GW-Bethe-Salpeter equation method and density functional perturbation theory, we calculate the electron-phonon and exciton-phonon coupling matrix elements for the spin-flip scattering in monolayer WSe, and further analyze the microscopic mechanisms influencing these scattering strengths. We find that phonons could produce effective in-plane magnetic fields which flip spin of excitons, giving rise to relaxation channels complimentary to the spin-conserving relaxation. Finally, we calculate temperature-dependent spin-flip exciton-phonon relaxation times. Our method and analysis can be generalized to study other two-dimensional materials and would stimulate experimental measurements of spin-flip exciton relaxation dynamics.
我们采用多种方法研究了二维过渡金属二卤化物中激子与声子耦合导致的自旋非守恒弛豫通道。结合GW-贝特-萨尔皮特方程方法和密度泛函微扰理论,我们计算了单层WSe₂中自旋翻转散射的电子-声子和激子-声子耦合矩阵元,并进一步分析了影响这些散射强度的微观机制。我们发现,声子可以产生有效的面内磁场,使激子的自旋翻转,从而产生与自旋守恒弛豫互补的弛豫通道。最后,我们计算了与温度相关的自旋翻转激子-声子弛豫时间。我们的方法和分析可以推广到研究其他二维材料,并将激发对自旋翻转激子弛豫动力学的实验测量。