去相
激子
单层
异质结
材料科学
光致发光
电介质
凝聚态物理
量子
过渡金属
光电子学
联轴节(管道)
纳米技术
物理
化学
量子力学
冶金
催化作用
生物化学
作者
Torben L. Purz,Eric W. Martin,William Holtzmann,Pasqual Rivera,Adam Alfrey,Kelsey M. Bates,Huiqiu Deng,Xiaodong Xu,Steven T. Cundiff
摘要
Transition metal dichalcogenides (TMDs) are regarded as a possible material platform for quantum information science and related device applications. In TMD monolayers, the dephasing time and inhomogeneity are crucial parameters for any quantum information application. In TMD heterostructures, coupling strength and interlayer exciton lifetimes are also parameters of interest. However, many demonstrations in TMDs can only be realized at specific spots on the sample, presenting a challenge to the scalability of these applications. Here, using multi-dimensional coherent imaging spectroscopy, we shed light on the underlying physics—including dephasing, inhomogeneity, and strain—for a MoSe2 monolayer and identify both promising and unfavorable areas for quantum information applications. We, furthermore, apply the same technique to a MoSe2/WSe2 heterostructure. Despite the notable presence of strain and dielectric environment changes, coherent and incoherent coupling and interlayer exciton lifetimes are mostly robust across the sample. This uniformity is despite a significantly inhomogeneous interlayer exciton photoluminescence distribution that suggests a bad sample for device applications. This robustness strengthens the case for TMDs as a next-generation material platform in quantum information science and beyond.
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