Coupled Tamm Phonon and Plasmon Polaritons for Designer Planar Multiresonance Absorbers

Author:

He Mingze1ORCID,Nolen Joshua Ryan23,Nordlander Josh4,Cleri Angela4,Lu Guanyu1,Arnaud Thiago56,McIlwaine Nathaniel S.4,Diaz‐Granados Katja2,Janzen Eli7,Folland Thomas G.18,Edgar James H.7,Maria Jon‐Paul4,Caldwell Joshua D.129ORCID

Affiliation:

1. Department of Mechanical Engineering Vanderbilt University Nashville TN 37240 USA

2. Interdisciplinary Materials Science Program Vanderbilt University Nashville TN 37240 USA

3. Photonics Initiative Advanced Science Research Center City University of New York New York NY 10031 USA

4. Department of Materials Science and Engineering The Pennsylvania State University University Park Pennsylvania PA 16802 USA

5. Department of Physics University of Florida Gainesville FL 32611 USA

6. Research Experience for Undergraduates (REU) program Vanderbilt Institute for Nanoscale Science and Engineering (VINSE) Nashville TN 37240 USA

7. Tim Taylor Department of Chemical Engineering Kansas State University Manhattan KS 66506 USA

8. Department of Physics and Astronomy The University of Iowa Iowa City IA 52242 USA

9. Sensorium Technological Laboratories Nashville TN 37205 USA

Abstract

AbstractWavelength‐selective absorbers (WS‐absorbers) are of interest for various applications, including chemical sensing and light sources. Lithography‐free fabrication of WS‐absorbers can be realized via Tamm plasmon polaritons (TPPs) supported by distributed Bragg reflectors (DBRs) on plasmonic materials. While multifrequency and nearly arbitrary spectra can be realized with TPPs via inverse design algorithms, demanding and thick DBRs are required for high quality‐factors (Q‐factors) and/or multiband TPP‐absorbers, increasing the cost and reducing fabrication error tolerance. Here, high Q‐factor multiband absorption with limited DBR layers (3 layers) is experimentally demonstrated by Tamm hybrid polaritons (THPs) formed by coupling TPPs and Tamm phonon polaritons when modal frequencies are overlapped. Compared to the TPP component, the Q‐factors of THPs are improved twofold, and the angular broadening is also reduced twofold, facilitating applications where narrow‐band and nondispersive WS‐absorbers are needed. Moreover, an open‐source algorithm is developed to inversely design THP‐absorbers consisting of anisotropic media and exemplify that the modal frequencies can be assigned to desirable positions. Furthermore, it is demonstrated that inversely designed THP‐absorbers can realize same spectral resonances with fewer DBR layers than a TPP‐absorber, thus reducing the fabrication complexity and enabling more cost‐effective, lithography‐free, wafer‐scale WS‐absorberss for applications such as free‐space communications and gas sensing.

Funder

Army Research Office

National Science Foundation

Office of Naval Research

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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