纳米激光器
激光阈值
电介质
等离子体子
光电子学
材料科学
模式音量
光子
量子点
光场
激发态
纳米光子学
欧姆接触
光学
表面等离子体子
雷
领域(数学)
停留时间
物理
电场
低语长廊波浪
光发射
色散(光学)
体积热力学
载流子
作者
Meng Xiong,Yi Yu,Yury Berdnikov,Simon Klinck Borregaard,Adrian Holm Dubré,Elizaveta Semenova,Kresten Yvind,Jesper Mørk
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-12-17
卷期号:11 (51): eadx3865-eadx3865
被引量:3
标识
DOI:10.1126/sciadv.adx3865
摘要
The interaction between light and matter can be enhanced by spatially concentrating the light field and extending photon dwell time. Plasmonic structures can provide strong light confinement but suffer from ohmic losses. Recent advances in dielectric nanostructures enable strong light localization without metallic losses. However, previous studies primarily focused on minimizing the optical mode volume without adequately addressing light-matter interactions. Here, we demonstrate a nanolaser that colocalizes photons and excited carriers within a dielectric nanobridge. This extreme dielectric confinement of both light and matter yields a subdiffraction-limited mode volume and a subwavelength carrier volume without lateral quantum confinement. We observe a strong correlation between the mode field and carrier distribution, where enhanced mode localization produces stronger carrier confinement. By suppressing carrier surface recombination, this platform not only enables continuous-wave lasing at room temperature but also achieves a substantially reduced lasing threshold. We quantify the intensified interaction with an interaction volume, generalizing mode volume to a broad class of active media.
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