Nano-electromechanical Tuning of Dual-Mode Resonant Dielectric Metasurfaces for Dynamic Amplitude and Phase Modulation.

Bound states in the continuum Guided mode resonance Metasurface NEMS Optical modulator Photonic crystal

Journal

Nano letters
ISSN: 1530-6992
Titre abrégé: Nano Lett
Pays: United States
ID NLM: 101088070

Informations de publication

Date de publication:
14 Apr 2021
Historique:
pubmed: 6 2 2021
medline: 6 2 2021
entrez: 5 2 2021
Statut: ppublish

Résumé

Planar all-dielectric photonic crystals or metasurfaces host various resonant eigenmodes including leaky guided mode resonances (GMR) and bound states in the continuum (BIC). Engineering these resonant modes can provide new opportunities for diverse applications. Particularly, electrical control of the resonances will boost development of the applications by making them tunable. Here, we experimentally demonstrate nano-electromechanical tuning of both the GMR and the quasi-BIC modes in the telecom wavelength range. With electrostatic forces induced by a few volts, the devices achieve spectral shifts over 5 nm, absolute intensity modulation over 40%, and modulation speed exceeding 10 kHz. We also show that the interference between two resonances enables the enhancement of the phase response when two modes are overlapped in spectrum. A phase shift of 144° is experimentally observed with a bias of 4 V. Our work suggests a direct route toward optical modulators through the engineering of GMRs and quasi-BIC resonances.

Identifiants

pubmed: 33544608
doi: 10.1021/acs.nanolett.0c04888
pmc: PMC8890003
mid: NIHMS1777851
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

2817-2823

Subventions

Organisme : NEI NIH HHS
ID : R21 EY029460
Pays : United States

Références

Adv Mater. 2019 Jan;31(1):e1804801
pubmed: 30398682
Opt Lett. 1996 Oct 1;21(19):1564-6
pubmed: 19881726
Science. 2019 Jul 19;365(6450):257-260
pubmed: 31320534
Science. 2016 Nov 18;354(6314):
pubmed: 27856851
Science. 2018 Jun 8;360(6393):1105-1109
pubmed: 29880685
Nano Lett. 2017 Jan 11;17(1):407-413
pubmed: 27936784
J Opt Soc Am A Opt Image Sci Vis. 2003 Mar;20(3):569-72
pubmed: 12630843
Phys Rev Lett. 2018 Nov 9;121(19):193903
pubmed: 30468599
Nano Lett. 2018 Dec 12;18(12):8062-8069
pubmed: 30499674
Science. 2019 May 17;364(6441):
pubmed: 31097638
Phys Rev Lett. 2019 Dec 20;123(25):253901
pubmed: 31922806
Science. 2020 Jan 17;367(6475):288-292
pubmed: 31949078
Nat Nanotechnol. 2016 Jan;11(1):16-22
pubmed: 26740040
Nature. 2017 Jan 11;541(7636):196-199
pubmed: 28079064
Adv Mater. 2019 Sep;31(37):e1901921
pubmed: 31368212
Opt Express. 2005 Jun 13;13(12):4645-50
pubmed: 19495380

Auteurs

Hyounghan Kwon (H)

T. J. Watson Laboratory of Applied Physics and Kavli Nanoscience Institute, California Institute of Technology, 1200 E. California Boulevard, Pasadena, California 91125, United States.
Department of Electrical Engineering, California Institute of Technology, 1200 E. California Boulevard, Pasadena, California 91125, United States.

Tianzhe Zheng (T)

T. J. Watson Laboratory of Applied Physics and Kavli Nanoscience Institute, California Institute of Technology, 1200 E. California Boulevard, Pasadena, California 91125, United States.

Andrei Faraon (A)

T. J. Watson Laboratory of Applied Physics and Kavli Nanoscience Institute, California Institute of Technology, 1200 E. California Boulevard, Pasadena, California 91125, United States.
Department of Electrical Engineering, California Institute of Technology, 1200 E. California Boulevard, Pasadena, California 91125, United States.

Classifications MeSH