Jo Kiyoung, Stevens Christopher E, Choi Bongjun, El-Khoury Patrick Z, Hendrickson Joshua R, Jariwala Deep
Department of Electrical and Systems Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
Physical Sciences Division, Pacific Northwest National Laboratory, Richland, Washington 99352, United States.
Nano Lett. 2024 Apr 9. doi: 10.1021/acs.nanolett.3c03790.
Localized emission in atomically thin semiconductors has sparked significant interest as single-photon sources. Despite comprehensive studies into the correlation between localized strain and exciton emission, the impacts of charge transfer on nanobubble emission remains elusive. Here, we report the observation of core/shell-like localized emission from monolayer WSe nanobubbles at room temperature through near-field studies. By altering the electronic junction between monolayer WSe and the Au substrate, one can effectively adjust the semiconductor to metal junction from a Schottky to an Ohmic junction. Through concurrent analysis of topography, potential, tip-enhanced photoluminescence, and a piezo response force microscope, we attribute the core/shell-like emissions to strong piezoelectric potential aided by induced polarity at the WSe-Au Schottky interface which results in spatial confinement of the excitons. Our findings present a new approach for manipulating charge confinement and engineering localized emission within atomically thin semiconductor nanobubbles. These insights hold implications for advancing the nano and quantum photonics with low-dimensional semiconductors.
原子级薄半导体中的局域发射作为单光子源引发了极大的兴趣。尽管对局域应变与激子发射之间的相关性进行了全面研究,但电荷转移对纳米气泡发射的影响仍不清楚。在此,我们通过近场研究报告了在室温下从单层WSe纳米气泡中观察到的核/壳状局域发射。通过改变单层WSe与金衬底之间的电子结,人们可以有效地将半导体与金属结从肖特基结调整为欧姆结。通过同时分析形貌、电势、针尖增强光致发光和压电响应力显微镜,我们将核/壳状发射归因于WSe-金肖特基界面处由感应极性辅助的强压电势,这导致了激子的空间限制。我们的发现提出了一种在原子级薄半导体纳米气泡中操纵电荷限制和设计局域发射的新方法。这些见解对推进低维半导体的纳米和量子光子学具有重要意义。