Back to Search Start Over

Deterministic inverse design of Tamm plasmon thermal emitters with multi-resonant control

Authors :
He, Mingze
Nolen, J. Ryan
Nordlander, Josh
Cleri, Angela
McIlwaine, Nathaniel S.
Tang, Yucheng
Lu, Guanyu
Folland, Thomas G.
Landman, Bennett A.
Maria, Jon-Paul
Caldwell, Joshua D.
Source :
Nature Materials; December 2021, Vol. 20 Issue: 12 p1663-1669, 7p
Publication Year :
2021

Abstract

Wavelength-selective thermal emitters (WS-EMs) are of interest due to the lack of cost-effective, narrow-band sources in the mid- to long-wave infrared. WS-EMs can be realized via Tamm plasmon polaritons (TPPs) supported by distributed Bragg reflectors on metals. However, the design of multiple resonances is challenging as numerous structural parameters must be optimized simultaneously. Here we use stochastic gradient descent to optimize TPP emitters (TPP-EMs) composed of an aperiodic distributed Bragg reflector deposited on doped cadmium oxide (CdO) film, where layer thicknesses and carrier density are inversely designed. The combination of the aperiodic distributed Bragg reflector with the designable plasma frequency of CdO enables multiple TPP-EM modes to be simultaneously designed with arbitrary spectral control not accessible with metal-based TPPs. Using this approach, we experimentally demonstrated and numerically proposed TPP-EMs exhibiting single or multiple emission bands with designable frequencies, line-widths and amplitudes. This thereby enables lithography-free, wafer-scale WS-EMs that are complementary metal–oxide–semiconductor compatible for applications such as free-space communications and gas sensing.

Details

Language :
English
ISSN :
14761122 and 14764660
Volume :
20
Issue :
12
Database :
Supplemental Index
Journal :
Nature Materials
Publication Type :
Periodical
Accession number :
ejs58106415
Full Text :
https://doi.org/10.1038/s41563-021-01094-0