镧系元素
材料科学
化学
纳米技术
光电子学
纳米颗粒
结晶学
计算机科学
物理
分析化学(期刊)
作者
Xuran Zhang,Chongwu Wang,Jiaye Chen,Mingjin Dai,Yu Luo,Liangliang Liang,Xiaogang Liu,Qijie Wang
标识
DOI:10.1038/s41467-026-76701-2
摘要
Advanced mid-infrared (MIR) detection underpins a wide range of applications from chemical sensing to thermal imaging. Conventional MIR photodetectors rely on narrow-bandgap semiconductors that typically require cryogenic cooling, whereas uncooled alternatives suffer from inherently low detectivity. An emerging strategy addresses this trade-off by converting MIR photons into near-infrared or visible (NIR/VIS) emission using lanthanide-based nanotransducers, enabling room-temperature operation. However, practical implementation is hindered by pronounced nonradiative quenching, which limits conversion efficiency and suppresses MIR-induced ratiometric luminescence. Here, we report a plasmonic-enhanced, self-assembled MIR detection platform based on Nd3+/Yb3+ co-doped NaYF4 nanoparticles coupled to gold nanospheres. This platform transduces MIR signals into NIR emission detectable by low-cost silicon photodetectors, achieving a room-temperature specific detectivity of 2×109 Jones at 8 μm. Localized surface plasmon resonances generate strongly confined electromagnetic fields that concurrently amplify excitation and emission, delivering a seven-fold boost in specific detectivity relative to pristine nanoparticles. Combining scalable fabrication with silicon-readout compatibility, this plasmonic-assisted approach paves the way for high-performance MIR sensing, imaging, and spectroscopy. Lanthanide nanotransducers can convert mid-infrared light into nearinfrared signals but suffer from weak emission. Here, authors couple Nd3 + /Yb3 + -doped nanoparticles with gold nanospheres to achieve silicon-readable detection with seven-fold improvement in specific detectivity relative to the pristine nanoparticles.
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