三极管
激子
准粒子
结合能
单层
密度泛函理论
凝聚态物理
范德瓦尔斯力
电子
半导体
物理
从头算
材料科学
分子物理学
原子物理学
纳米技术
量子力学
超导电性
分子
作者
Zeya Li,Feng Qin,Chin Shen Ong,Junwei Huang,Zian Xu,Peng Chen,Caiyu Qiu,Xi Zhang,Caorong Zhang,Xiuxiu Zhang,Olle Eriksson,Ángel Rubio,Peizhe Tang,Hongtao Yuan
出处
期刊:Nano Letters
[American Chemical Society]
日期:2023-10-31
卷期号:23 (22): 10282-10289
标识
DOI:10.1021/acs.nanolett.3c02812
摘要
Quasiparticles consisting of correlated electron(s) and hole(s), such as excitons and trions, play important roles in the optical phenomena of van der Waals semiconductors and serve as unique platforms for studies of many-body physics. Herein, we report a gate-tunable exciton-to-trion transition in pressurized monolayer MoSe2, in which the electronic band structures are modulated continuously within a diamond anvil cell. The emission energies of both the exciton and trion undergo large blueshifts over 90 meV with increasing pressure. Surprisingly, the trion binding energy remains constant at 30 meV, regardless of the applied pressure. Combining ab initio density functional theory calculations and quantum Monte Carlo simulations, we find that the remarkable robustness of the trion binding energy originates from the spatially diffused nature of the trion wave function and the weak correlation between its constituent electron-hole pairs. Our findings shed light on the optical properties of correlated excitonic quasiparticles in low-dimensional materials.
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