激子
准粒子
重整化
物理
带隙
范德瓦尔斯力
角分辨光电子能谱
凝聚态物理
电子能带结构
电子结构
材料科学
量子力学
超导电性
分子
作者
Yi Lin,Yang‐Hao Chan,Woojoo Lee,Li‐Syuan Lu,Zhenglu Li,Wen‐Hao Chang,Chih‐Kang Shih,Robert A. Kaindl,Steven G. Louie,Alessandra Lanzara
出处
期刊:Physical review
[American Physical Society]
日期:2022-08-18
卷期号:106 (8)
被引量:24
标识
DOI:10.1103/physrevb.106.l081117
摘要
Optical excitation serves as a powerful approach to control the electronic structure of layered Van der Waals materials via many-body screening effects, induced by photoexcited free carriers, or via light-driven coherence, such as optical Stark and Bloch-Siegert effects. Although theoretical work has also pointed to an exotic mechanism of renormalizing band structure via excitonic correlations in bound electron-hole pairs (excitons), experimental observation of such exciton-driven band renormalization and the full extent of their implications is still lacking, largely due to the limitations of optical probes and the impact of screening effects. Here, by using extreme-ultraviolet time-resolved angle-resolved photoemission spectroscopy together with excitonic many-body theoretical calculations, we directly unmask the band renormalization effects driven by excitonic correlations in a monolayer semiconductor. We revealed a surprising bandgap opening, increased by 40 meV, and a simultaneous enhancement of band effective mass. Our findings unmask the novel exciton-driven mechanism towards the band engineering in photoexcited semiconducting materials, opening a new playground to manipulate the transient energy states in layered quantum materials via optical controls of excitonic many-body correlations.
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