Enhancing Plasmonic Spectral Tunability with Anomalous
Material Dispersion
Posted on 2020-12-21 - 19:07
The field confinement of plasmonic
systems enables spectral tunability
under structural variations or environmental perturbations, which
is the principle for various applications including nanorulers, sensors,
and color displays. Here, we propose and demonstrate that materials
with anomalous dispersion, such as Ge in the visible, improve spectral
tunability. We introduce our proposal with a semianalytical guided
mode picture. Using Ge-based film (Ag/Au)-coupled gap plasmon resonators,
we implement two architectures and demonstrate the improved tunability
with single-particle dark-field scattering, ensemble reflection, and
color generation. We observe three-fold enhancement of tunability
with Ge nanodisks compared with that of Si, a normal-dispersion material
in the visible. The structural color generation of large array systems,
made of inversely fabricated Ge–Ag resonators, exhibits a wide
gamut. Our results introduce anomalous material dispersion as an extra
degree of freedom to engineer the spectral tunability of plasmonic
systems, especially relevant for actively tunable plasmonics and metasurfaces.
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Zheng, Mengjie; Yang, Yi; Zhu, Di; Chen, Yiqin; Shu, Zhiwen; Berggren, Karl K.; et al. (2020). Enhancing Plasmonic Spectral Tunability with Anomalous
Material Dispersion. ACS Publications. Collection. https://doi.org/10.1021/acs.nanolett.0c03293