等离子体子
光致发光
材料科学
光电子学
自发辐射
塞尔效应
量子点
激光器
红外线的
光子学
波长
光发射
共发射极
联轴节(管道)
光学
物理
冶金
作者
Kseniia A. Sergeeva,Д. В. Павлов,A. Seredin,Eugeny Mitsai,A. A. Sergeev,Evgeny Modin,Anastasiia V. Sokolova,Jenson Lau,Kseniia V. Baryshnikova,Mihail Petrov,Stephen V. Kershaw,Aleksandr A. Kuchmizhak,Kam Sing Wong,Andrey L. Rogach
标识
DOI:10.1002/adfm.202307660
摘要
Abstract In order to advance the development of quantum emitter‐based devices, it is essential to enhance light‐matter interactions through coupling between semiconductor quantum dots with high quality factor resonators. Here, efficient tuning of the emission properties of HgTe quantum dots in the infrared spectral region is demonstrated by coupling them to a plasmonic metasurface that supports bound states in the continuum. The plasmonic metasurface, composed of an array of gold nanobumps, is fabricated using single‐step direct laser printing, opening up new opportunities for creating exclusive 3D plasmonic nanostructures and advanced photonic devices in the infrared region. A 12‐fold enhancement of the photoluminescence in the 900–1700 nm range is observed under optimal coupling conditions. By tuning the geometry of the plasmonic arrays, controllable shaping of the emission spectra is achieved, selectively enhancing specific wavelength ranges across the emission spectrum. The observed enhancement and shaping of the emission are attributed to the Purcell effect, as corroborated by systematic measurements of radiative lifetimes and optical simulations based on the numerical solution of Maxwell's equations. Moreover, coupling of the HgTe photoluminescence to high quality factor modes of the metasurface improves emission directivity, concentrating output within an ≈20° angle.
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