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应变工程化WSe单分子层中量子发射器与局部应变场的亚衍射相关性

Sub-Diffraction Correlation of Quantum Emitters and Local Strain Fields in Strain-Engineered WSe Monolayers.

作者信息

Xu David D, Vong Albert F, Utama M Iqbal Bakti, Lebedev Dmitry, Ananth Riddhi, Hersam Mark C, Weiss Emily A, Mirkin Chad A

机构信息

Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, IL, 60208, USA.

International Institute for Nanotechnology, Northwestern University, 2145 Sheridan Road, Evanston, IL, 60208, USA.

出版信息

Adv Mater. 2024 Jun;36(25):e2314242. doi: 10.1002/adma.202314242. Epub 2024 Mar 26.

Abstract

Strain-engineering in atomically thin metal dichalcogenides is a useful method for realizing single-photon emitters (SPEs) for quantum technologies. Correlating SPE position with local strain topography is challenging due to localization inaccuracies from the diffraction limit. Currently, SPEs are assumed to be positioned at the highest strained location and are typically identified by randomly screening narrow-linewidth emitters, of which only a few are spectrally pure. In this work, hyperspectral quantum emitter localization microscopy is used to locate 33 SPEs in nanoparticle-strained WSe monolayers with sub-diffraction-limit resolution (≈30 nm) and correlate their positions with the underlying strain field via image registration. In this system, spectrally pure emitters are not concentrated at the highest strain location due to spectral contamination; instead, isolable SPEs are distributed away from points of peak strain with an average displacement of 240 nm. These observations point toward a need for a change in the design rules for strain-engineered SPEs and constitute a key step toward realizing next-generation quantum optical architectures.

摘要

在原子级薄的金属二硫属化物中进行应变工程是实现用于量子技术的单光子发射器(SPE)的一种有用方法。由于衍射极限导致的定位不准确,将SPE位置与局部应变形貌相关联具有挑战性。目前,SPE被假定位于应变最高的位置,并且通常通过随机筛选窄线宽发射器来识别,其中只有少数是光谱纯的。在这项工作中,高光谱量子发射器定位显微镜被用于以亚衍射极限分辨率(≈30 nm)在纳米颗粒应变的WSe单层中定位33个SPE,并通过图像配准将它们的位置与底层应变场相关联。在这个系统中,由于光谱污染,光谱纯的发射器并不集中在应变最高的位置;相反,可分离的SPE分布在远离应变峰值点的地方,平均位移为240 nm。这些观察结果表明需要改变应变工程SPE的设计规则,并构成了实现下一代量子光学架构的关键一步。

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