论文标题
单层MOS2中准粒子带结构的激子驱动的重新归一化
Exciton-Driven Renormalization of Quasiparticle Band Structure in Monolayer MoS2
论文作者
论文摘要
光激发是一种强大的方法,可以通过多体筛选效果(由光激发自由载体引起的多体筛选效果或通过光驱动的连贯性,例如光学鲜明和bloch-siegert效应,可以通过多体筛选效果来控制分层的范德华材料的电子结构。尽管理论工作还指出了通过绑定的电子孔对(激子)中的激素相关性重新归一化的带状结构的外来机制(激子),但仍缺乏对这种激子驱动的带恢复量的实验性观察,其影响的全部程度仍然缺乏,很大程度上是由于光学探针的限制和筛选效果的影响。在这里,通过使用极端耗分式时间分辨的角度分辨光光谱以及激子多体理论计算,我们直接揭示了单层半导体中激发频率相关性驱动的频带恢复效应。我们揭示了一个令人惊讶的带隙开口,增加了40 MEV,并同时增强了有效质量。我们的发现将新颖的激子驱动机制揭示了带有光激发的半导体材料的频带工程,开辟了一个新的操场,通过激发量的多体相关性的光学控制在分层量子材料中操纵瞬态能量状态。
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.