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通过与新型等离子体纳米间隙耦合,稳定的核壳钙钛矿量子点的自发发射率提高了一千多倍。

Over a thousand-fold enhancement of the spontaneous emission rate for stable core-shell perovskite quantum dots through coupling with novel plasmonic nanogaps.

作者信息

Silalahi Vanna Chrismas, Kim Dokyum, Kim Minjun, Adhikari Samir, Jun Seongmoon, Cho Yong-Hoon, Lee Donghan, Lee Chang-Lyoul, Jang Yudong

机构信息

Department of Physics, Chungnam National University, Daejeon 34134, Republic of Korea.

Advanced Photonics Research Institute (APRI), Gwangju Institute of Science and Technology (GIST), Gwangju 61005, Republic of Korea.

出版信息

Nanophotonics. 2024 Jan 30;13(3):369-376. doi: 10.1515/nanoph-2023-0751. eCollection 2024 Feb.

Abstract

High Purcell enhancement structures and stable emitters are essential prerequisites for the successful development of novel fast-operating active devices. Furthermore, a uniform enhancement of the spontaneous emission rate is critical for practical applications. Despite considerable efforts being made to meet these requirements, achieving them still remains a challenging task. In this work, we demonstrate that placing stable core-shell perovskite quantum dots (PQDs) in the nanogap region of hole/sphere-based nanogap structures (HSNGs) can enhance the spontaneous emission rate by more than a thousand-fold (up to a factor of ∼1080) compared to PQDs in solution. This enhancement factor is the highest value reported using PQDs, exceeding previously reported values by two orders of magnitude. Notably, the enhancement factor of the emission rate in the HSNG maintains large values across the samples, with values ranging from ∼690 to ∼1080. Furthermore, the structural stabilities of the PQDs are remarkably enhanced with the incorporation of SiO shells, which is validated by monitoring the changes in photoluminescence intensities over time during continuous laser exposure. As a result, the HSNG with stable core-shell PQDs offers great potential for fast optical device applications that require high performance and long-term operational stability.

摘要

高珀塞尔增强结构和稳定的发光体是成功开发新型快速运行有源器件的基本前提条件。此外,自发发射率的均匀增强对于实际应用至关重要。尽管已经做出了相当大的努力来满足这些要求,但要实现它们仍然是一项具有挑战性的任务。在这项工作中,我们证明,与溶液中的钙钛矿量子点(PQD)相比,将稳定的核壳型钙钛矿量子点放置在基于孔/球的纳米间隙结构(HSNG)的纳米间隙区域中,可以将自发发射率提高一千多倍(高达约1080倍)。这个增强因子是使用PQD报道的最高值,比之前报道的值高出两个数量级。值得注意的是,HSNG中发射率的增强因子在整个样品中都保持较大的值,范围从约690到约1080。此外,通过在连续激光照射期间监测光致发光强度随时间的变化验证,SiO壳层的引入显著增强了PQD的结构稳定性。因此,具有稳定核壳PQD的HSNG在需要高性能和长期运行稳定性的快速光学器件应用中具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3019/11501862/feb5cb3a1855/j_nanoph-2023-0751_fig_001.jpg

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