Parto Kamyar, Azzam Shaimaa I, Banerjee Kaustav, Moody Galan
Department of Electrical and Computer Engineering, University of California, Santa Barbara, CA, USA.
California Nanosystems Institute, University of California Santa Barbara, Santa Barbara, CA, USA.
Nat Commun. 2021 Jun 11;12(1):3585. doi: 10.1038/s41467-021-23709-5.
In recent years, quantum-dot-like single-photon emitters in atomically thin van der Waals materials have become a promising platform for future on-chip scalable quantum light sources with unique advantages over existing technologies, notably the potential for site-specific engineering. However, the required cryogenic temperatures for the functionality of these sources has been an inhibitor of their full potential. Existing methods to create emitters in 2D materials face fundamental challenges in extending the working temperature while maintaining the emitter's fabrication yield and purity. In this work, we demonstrate a method of creating site-controlled single-photon emitters in atomically thin WSe with high yield utilizing independent and simultaneous strain engineering via nanoscale stressors and defect engineering via electron-beam irradiation. Many of the emitters exhibit biexciton cascaded emission, single-photon purities above 95%, and working temperatures up to 150 K. This methodology, coupled with possible plasmonic or optical micro-cavity integration, furthers the realization of scalable, room-temperature, and high-quality 2D single- and entangled-photon sources.
近年来,原子级薄的范德华材料中的类量子点单光子发射器已成为未来片上可扩展量子光源的一个有前景的平台,与现有技术相比具有独特优势,特别是具有位点特异性工程的潜力。然而,这些光源功能所需的低温温度一直是其充分发挥潜力的一个阻碍因素。在二维材料中创建发射器的现有方法在提高工作温度同时保持发射器的制造产率和纯度方面面临根本挑战。在这项工作中,我们展示了一种利用纳米级应力源进行独立且同步的应变工程以及通过电子束辐照进行缺陷工程,在原子级薄的WSe₂中高产量地创建位点可控单光子发射器的方法。许多发射器表现出双激子级联发射、单光子纯度高于95%以及高达150 K的工作温度。这种方法,再加上可能的等离子体或光学微腔集成,进一步推动了可扩展、室温且高质量的二维单光子和纠缠光子源的实现。