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过渡金属二卤化物异质结构中层激子的光吸收。

Optical absorption of interlayer excitons in transition-metal dichalcogenide heterostructures.

机构信息

SLAC National Accelerator Laboratory, Menlo Park, CA 94025, USA.

Department of Electrical Engineering, Stanford University, Stanford, CA 94305, USA.

出版信息

Science. 2022 Apr 22;376(6591):406-410. doi: 10.1126/science.abm8511. Epub 2022 Apr 21.

Abstract

Interlayer excitons, electron-hole pairs bound across two monolayer van der Waals semiconductors, offer promising electrical tunability and localizability. Because such excitons display weak electron-hole overlap, most studies have examined only the lowest-energy excitons through photoluminescence. We directly measured the dielectric response of interlayer excitons, which we accessed using their static electric dipole moment. We thereby determined an intrinsic radiative lifetime of 0.40 nanoseconds for the lowest direct-gap interlayer exciton in a tungsten diselenide/molybdenum diselenide heterostructure. We found that differences in electric field and twist angle induced trends in exciton transition strengths and energies, which could be related to wave function overlap, moiré confinement, and atomic reconstruction. Through comparison with photoluminescence spectra, this study identifies a momentum-indirect emission mechanism. Characterization of the absorption is key for applications relying on light-matter interactions.

摘要

层间激子是束缚在两个二维范德华半导体层之间的电子-空穴对,具有有前景的电可调谐性和局域性。由于这种激子表现出较弱的电子-空穴重叠,因此大多数研究仅通过光致发光研究了最低能量的激子。我们直接测量了层间激子的介电响应,我们通过它们的静态电偶极矩来访问这些激子。由此,我们确定了二硒化钨/二硒化钼异质结构中最低直接带隙层间激子的固有辐射寿命为 0.40 纳秒。我们发现,电场和扭转角的差异引起了激子跃迁强度和能量的趋势,这可能与波函数重叠、莫尔超晶格限制和原子重构有关。通过与光致发光光谱进行比较,这项研究确定了一种动量间接发射机制。对于依赖于光物质相互作用的应用,吸收特性的表征是关键。

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