光电阴极
光电子学
宽带
光电流
光探测
物理
光学
探测器
光激发
太赫兹辐射
等离子体子
材料科学
偏压
光电探测器
红外线的
阴极
暗电流
电压
光子学
肖特基二极管
能量(信号处理)
阳极
整改
多光谱图像
计算机科学
光子
表面等离子体子
电子
光谱带
作者
Jiashuo Shi (10141415),Zexun Hu (11831956),Zhao Xu (6546),Taige Liu (11761736),Zhe Wang (41178),Xuan Shao (5570414),Chai Hu (20788256),Xinyu Zhang (14029)
出处
期刊:
[Figshare (United Kingdom)]
日期:2025-10-28
标识
DOI:10.1021/acsphotonics.5c01640.s001
摘要
Overcoming the spectral limitations of conventional photodetection systems that typically operate within narrow bandwidths, this work presents an optoelectronic platform that achieves efficient multiwavelength photon-electron-photon spectral conversion with total energy conversion efficiencies of approximately 11.7% (9.7 μm), 8.2% (2.2 μm), and 4.7% (655 nm), with all inputs collectively translated to a sharp emission centered around 545 nm. The device features a precisely engineered metasurface photocathode that exploits surface plasmon resonance (SPR) to induce localized electron accumulation under low-power optical excitation. Critically, by voltage-gating the cathode bias, the system establishes distinct spectral preference windows, thereby enabling wavelength-selective optimal conversion through simple electrical tuning. This approach permits flexible switching between pure photoexcitation and field emission regimes by adjusting the VMN bias beyond a threshold of ∼281 V. Full vacuum-packaged prototypes reveal photocurrent enhancements exceeding 2 orders of magnitude relative to the dark current (<10 nA) under sub-milliwatt infrared illumination, measured across an operational voltage ensemble of {VMN: 0–400 V, VMCP: 1600 V, VFM: 5900 V}. Collectively, this architecture establishes a versatile voltage-tunable platform for broadband spectral conversion, surpassing traditional single-band intensification approaches and opening avenues for compact infrared night vision, advanced biomedical imaging, and low-cost multispectral sensing.
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