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Omnidirectional Near-Unity Absorption in an Ultrathin Planar Semiconductor Layer on a Metal Substrate

Authors
Park, JunghyunKang, Ju-HyungVasudev, Alok P.Schoen, David T.Kim, HwiHasman, ErezBrongersma, Mark L.
Issue Date
Sep-2014
Publisher
AMER CHEMICAL SOC
Keywords
optical absorption; perfect absorber; semiconductor; surface plasmon polariton; critical coupling
Citation
ACS PHOTONICS, v.1, no.9, pp.812 - 821
Indexed
SCIE
SCOPUS
Journal Title
ACS PHOTONICS
Volume
1
Number
9
Start Page
812
End Page
821
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/97536
DOI
10.1021/ph500093d
ISSN
2330-4022
Abstract
We present omnidirectional near-unity absorption of light in an ultrathin planar semiconductor layer on a metal substrate. Using full-field simulations and a modal analysis, it is shown that more than 98% of the incident light energy can be absorbed in a mere 12 nm thick Ge layer on a Ag substrate at the wavelength of 625 nm over a wide range of angles (80% absorption up to 66 degrees in the transverse magnetic and 67 degrees in the transverse electric polarizations). The physical origin of such remarkable absorption properties is the coupling of incident light to the Brewster mode supported by the structure. The modal dispersion connects several critical coupling points in a dispersion diagram at which the absorption is unity and exhibits a virtually flat dispersion relation for both polarizations, resulting in omnidirectional, near-unity absorption. Potential applications of this simple, planar geometry such as photodetectors and solar cells made from various semiconductor materials are also discussed along with feasible charge-extracting structures and performance estimates.
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