材料科学
调幅
调制(音乐)
相位调制
光电子学
光子学
光调制器
振幅
光学
脉冲幅度调制
相(物质)
频率调制
无线电频率
物理
计算机科学
脉搏(音乐)
电信
声学
探测器
相位噪声
量子力学
作者
Isaac O. Oguntoye,Siddharth Padmanabha,Max Hinkle,Thalia Koutsougeras,Adam Ollanik,Matthew D. Escarra
标识
DOI:10.1021/acsami.3c08493
摘要
Efficient and dynamic light manipulation at small scale is highly desirable for many photonics applications. Active optical metasurfaces represent a useful way of achieving this due to their creative design potential, compact footprint, and low power consumption, paving the way toward the realization of chip-scale photonic devices with tunable optical functionality on demand. Here, we demonstrate a dynamically tunable, dual-function metasurface based on dielectric resonances in vanadium dioxide that is capable of independent active amplitude and phase control without the use of mechanical parts. Significant developments in the nanofabrication of vanadium dioxide have been shown to enable this metasurface. Gradual thermal control of the metasurface yields a computationally predicted continuously tuned amplitude modulation of 19 dB with negligible phase modulation and a continuously tuned phase modulation of 228° with negligible amplitude modulation, both at near-infrared wavelengths. Experimentally, a maximum continuously tuned amplitude modulation of 9.6 dB and phase modulation of 120° are shown, along with demonstration of stable intermediate states and repeated modulation without degradation. Reprogrammable optical functionality can thus be achieved in precisely engineered nanoantenna arrays for adaptive modulation of amplitude and phase of light for applications such as tunable holograms, lenses, and beam deflectors.
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