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Park, Hyeong‐Ryeol
Laboratory for Ultrafast & Nanoscale Plasmonics
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Nanogap-Enhanced Terahertz Sensing of 1 nm Thick (lambda/10(6)) Dielectric Films

Author(s)
Park, Hyeong-RyeolChen, XiaoshuNgoc-Cuong NguyenPeraire, JaimeOh, Sang-Hyun
Issued Date
2015-03
DOI
10.1021/ph500464j
URI
https://scholarworks.unist.ac.kr/handle/201301/26317
Fulltext
https://pubs.acs.org/doi/10.1021/ph500464j
Citation
ACS PHOTONICS, v.2, no.3, pp.417 - 424
Abstract
We experimentally show that terahertz (THz) waves confined in sub-10 nm metallic gaps can detect refractive index changes caused by only a 1 nm thick (similar to lambda/106) dielectric overlayer. We use atomic layer lithography to fabricate a wafer-scale array of annular nanogaps. Using THz time-domain spectroscopy in conjunction with atomic layer deposition, we measure spectral shifts of a THz resonance peak with increasing Al2O3 film thickness in 1 nm intervals. Because of the enormous mismatch in length scales between THz waves and sub-10 nm gaps, conventional modeling techniques cannot readily be used to analyze our results. We employ an advanced finite-element-modeling (FEM) technique, Hybridizable Discontinuous Galerkin (HDG) scheme, for full three-dimensional modeling of the resonant transmission of THz waves through an annular gap that is 2 nm in width and 32 mu m in diameter. Our multiscale 3D FEM technique and atomic layer lithography will enable a series of new investigations in THz nanophotonics that has not been possible before.
Publisher
AMER CHEMICAL SOC
ISSN
2330-4022
Keyword (Author)
nanogapthin-film sensingatomic layer depositionatomic layer lithographyfinite element modelingHybridizable Discontinuous Galerkin (HDG) methodterahertz nanophotonics
Keyword
DISCONTINUOUS GALERKIN METHODSEXTRAORDINARY OPTICAL-TRANSMISSIONTIME-DOMAIN SPECTROSCOPYATOMIC LAYER DEPOSITIONHARMONIC MAXWELL EQUATIONSSPOOF PLASMON SURFACESLIGHT TRANSMISSIONELLIPTIC PROBLEMSNANOHOLE ARRAYSRESONANCE

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