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等离子体氢传感器灵敏度优化的设计原则

Design Principles for Sensitivity Optimization in Plasmonic Hydrogen Sensors.

作者信息

Sterl Florian, Strohfeldt Nikolai, Both Steffen, Herkert Ediz, Weiss Thomas, Giessen Harald

机构信息

4th Physics Institute and Research Center SCoPE, University of Stuttgart, Pfaffenwaldring 57, 70569 Stuttgart, Germany.

出版信息

ACS Sens. 2020 Apr 24;5(4):917-927. doi: 10.1021/acssensors.9b02436. Epub 2020 Feb 14.

DOI:10.1021/acssensors.9b02436
PMID:31997641
Abstract

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.

摘要

由于介电函数随氢气浓度变化,钯纳米颗粒已被证明是用于氢气光学检测的极为合适的材料。开发一种可靠、低成本且广泛适用的氢气探测器需要一种简单的光学读出机制,并优化最低可检测氢气浓度。所谓的“完美吸收体”型结构,由悬浮在金属镜层上方的一层等离子体钯纳米天线组成,是实现此类传感器的一种有前景的方法。钯对氢气的吸收导致等离子体共振的偏移,进而导致远场反射光谱的变化。光谱变化可以使用光谱测量进行详细分析,而特定波长处的反射率变化可以用光电二极管和单色光源的简单光度系统检测。在此,我们系统地研究了腔耦合钯纳米结构的几何形状以及光学系统概念,这使我们能够制定一套优化氢气灵敏度的设计规则。运用这些原理,我们展示了对低至100 ppm浓度氢气的可靠检测。我们的结果不仅限于氢气传感,还可应用于任何类型的等离子体传感器。

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