利用等离子体-光子混合超表面的独立双模湿度和氢检测

Hongsen Zhao, Qiushun Zou*, Ang Xu and Xiang Shen, 
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引用次数: 0

摘要

在工业过程控制、环境监测、生物医学诊断等领域,独立于元设备的高灵敏度多类型检测是必不可少的。在这里,我们报道了一种等离子体-光子混合超表面(PPHM),由聚乙烯醇(PVA)导模谐振器夹在顶部钯(Pd)光栅阵列和底部金反射器之间,同时实现了不受湿度和氢气影响的双模光学检测。通过带PVA光栅和间隔器的介电谐振器的导模来确定氢气或空气中的湿度特性。PVA层在高湿条件下的体积膨胀会引起PPHM导模的红移。湿度范围为30-80%,相对湿度灵敏度为0.31 nm/RH。PPHM的感氢特性是由于钯在吸氢后发生了相变,从而引起了反射率的变化。当钯光栅完全氢化时,PPHM的相对反射变化高达1.12。结果表明,PPHM是一种很有前途的实现湿度和氢传感的多类型光学检测平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Independent Dual-Mode Humidity and Hydrogen Detection Using a Plasmonic-Photonic Hybrid Metasurface

Independent Dual-Mode Humidity and Hydrogen Detection Using a Plasmonic-Photonic Hybrid Metasurface

High-sensitivity multitype detections independent of the metadevices are essential in industrial process control, environmental monitoring, biomedical diagnosis, etc. Here, we report a plasmonic-photonic hybrid metasurface (PPHM), consisting of a poly(vinyl alcohol) (PVA) guided-mode resonator sandwiched between a top palladium (Pd) grating array and a bottom gold reflector, achieving dual-mode optical detections independent of humidity and hydrogen simultaneously. The humidity properties in hydrogen gas or air were determined by the guided mode from a dielectric resonator with the PVA gratings and a spacer. The volume expansion in a PVA layer at high humidity gives rise to the redshift of the guided mode for the PPHM. An RH sensitivity of 0.31 nm/RH was achieved with a humidity range of 30–80%. The hydrogen-sensing characteristics of a PPHM result from the phase change of palladium after hydrogen absorption, which then causes reflectivity variations. The relative reflection change of a PPHM was up to 1.12 as palladium gratings were fully hydrogenated. The results suggest that the PPHM is a promising platform for realizing multitype optical detections of humidity and hydrogen sensing.

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来源期刊
ACS Applied Optical Materials
ACS Applied Optical Materials 材料科学-光学材料-
CiteScore
1.10
自引率
0.00%
发文量
0
期刊介绍: ACS Applied Optical Materials is an international and interdisciplinary forum to publish original experimental and theoretical including simulation and modeling research in optical materials complementing the ACS Applied Materials portfolio. With a focus on innovative applications ACS Applied Optical Materials also complements and expands the scope of existing ACS publications that focus on fundamental aspects of the interaction between light and matter in materials science including ACS Photonics Macromolecules Journal of Physical Chemistry C ACS Nano and Nano Letters.The scope of ACS Applied Optical Materials includes high quality research of an applied nature that integrates knowledge in materials science chemistry physics optical science and engineering.
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