等离子体子
氢
材料科学
氢传感器
钯
光电子学
吸收(声学)
探测器
表面等离子共振
光学
纳米技术
纳米颗粒
化学
物理
生物化学
有机化学
复合材料
催化作用
作者
Florian Sterl,Nikolai Strohfeldt,Steffen Both,Ediz Herkert,Thomas Weiß,Harald Gießen
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2020-01-30
卷期号:5 (4): 917-927
被引量:58
标识
DOI:10.1021/acssensors.9b02436
摘要
Palladium nanoparticles have proven to be exceptionally suitable materials for the optical detection of hydrogen gas due to the dielectric function that changes with the hydrogen concentration. The development of a reliable, low-cost, and widely applicable hydrogen detector requires a simple optical readout mechanism and an optimization of the lowest detectable hydrogen concentration. The so-called "perfect absorber"-type structures, consisting of a layer of plasmonic palladium nanoantennas suspended above a metallic mirror layer, are a promising approach to realizing such sensors. The absorption of hydrogen by palladium leads to a shift of the plasmon resonance and, thus, to a change in the far-field reflectance spectrum. The spectral change can be analyzed in detail using spectroscopic measurements, while the reflectance change at a specific wavelength can be detected with a simple photometric system of a photodiode and a monochromatic light source. Here, we systematically investigate the geometry of cavity-coupled palladium nanostructures as well as the optical system concept, which enables us to formulate a set of design rules for optimizing the hydrogen sensitivity. Employing these principles, we demonstrate the robust detection of hydrogen at concentrations down to 100 ppm. Our results are not limited to hydrogen sensing but can be applied to any type of plasmonic sensor.
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