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Nanogap plasmonic field enhancement on hydrogen-absorbing transition metals

机译:纳米孔等级励磁场增强氢吸氢过渡金属

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摘要

The electromagnetic field enhancement factors by gap plasmons between two spherical metal particles are calculated for hydrogen-absorbing transition metals Pd, Ti, and Ni, and reference noble metals Au, Ag, and Cu, in air, H-2, or vacuum, and H2O. The dependence of the field enhancement factors on the metal species, the field wavelength, the electric field polarization, the separation of the two metal particles, and the observing location is systematically investigated. Field enhancement is observed significantly large in the gap of two metal particles and sensitive to the particle separation, but insensitive to the position in the gap, indicating a geometric flexibility for applications. The spectral peak field enhancement factors for Pd, Ti, and Ni do not compete with those for Au, Ag, and Cu, but do in the microwave regime. For the electric field parallel to the bipartite alignment, the field enhancement factors in the gap for Pd, Ti, and Ni are observed as large as several hundred and ten thousand for the separation-to-radius ratios of 0.1 and 0.01, respectively, for a wide wavelength region spanning from the visible to the infrared. The large field enhancements in the nanogaps of hydrogen-absorbing transition metals observed in this study can potentially be utilized for various energy applications, such as hydrogen storage, sensing, and nuclear fusion. In practical metallic material systems, it is important to account for such a gap-plasmon effect because nanoscale gaps commonly exist, for instance, on rough metal surfaces and in metal particle aggregates. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:用于两个球形金属颗粒之间的间隙等离子体的电磁场增强因子用于吸氢过渡金属Pd,Ti和Ni,以及参考贵金属Au,Ag和Cu,空气,H-2或真空,以及H2O。系统地研究了现场增强因子对金属物种的依赖性,场波长,电场极化,两个金属颗粒的分离,以及观察位置。在两个金属颗粒的间隙中观察到田间增强并且对颗粒分离敏感,但对间隙中的位置不敏感,表明应用的几何灵活性。 PD,Ti和Ni的光谱峰场增强因子不会与Au,Ag和Cu的谱竞争,而是在微波制度中进行。对于平行于二分对准的电场,Pd,Ti和Ni的间隙中的现场增强因子分别观察到0.1和0.01的分离的半径比为数百和一千万。从跨越可见的红外线跨越波长区域。该研究中观察到的氢吸收过渡金属的纳米高分子中的大场增强可能用于各种能量应用,例如储氢,感测和核融合。在实用的金属材料系统中,重要的是考虑这种间隙 - 等离子体效应,因为纳米级间隙通常存在于例如粗糙金属表面和金属颗粒聚集体上。 (c)2021氢能出版物LLC。 elsevier有限公司出版。保留所有权利。

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