Dynamic tuning of surface lattice resonances via mechano-optical coupling in flexible nanoring metasurfaces

W Wei Tao (Center for Nanomedicine and Department of Anesthesiology, Perioperative and Pain Medicine, Brigham and Women’s Hospital) J Jonas Haas (Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,) Y Yuyang Wu P P. Christian Simo (Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,) W William d'Orsonnens (Laboratory Light, Nanomaterials and Nanotechnologies—L2n, University of Technology of Troyes and CNRS UMR 7076 3 , 10004 Troyes,) A Abdelhamid Hmima (Laboratory Light, Nanomaterials and Nanotechnologies—L2n, University of Technology of Troyes and CNRS UMR 7076 3 , 10004 Troyes,) F Florian Laible (Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,) J Jannik Meyer (Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,) T Thomas Maurer (Laboratory Light, Nanomaterials and Nanotechnologies—L2n, University of Technology of Troyes and CNRS UMR 7076 3 , 10004 Troyes,) M Monika Fleischer (Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,)

Abstract

Flexible metasurfaces comprising arrays of sub-wavelength thick nanoparticles embedded in soft and transparent substrates have attracted significant research interest due to their ability to generate predictable, tunable, and reversible optical performances. In this work, we employ electron beam lithography combined with wet-etching techniques to fabricate flexible metasurfaces of gold elliptical nanorings arranged in square or triangular arrays on polydimethylsiloxane. Scanning electron microscope tests conducted on the soft substrate demonstrate the feasibility of the pattern transfer technique at the nanoscale, as well as the reliability of the in situ optical characterization. Continuous monitoring of reflectance under strain, complemented by numerical simulations and theoretical analysis, reveals intriguing optical behaviors for these metasurfaces, including Fano features in surface lattice resonances, spectral blueshifts in localized surface plasmonic resonances, and color changes from purple to green and orange. By integrating metasurfaces with different characteristics into a chessboard-like pattern, we propose the configuration of a flexible strain map for contactless investigation of localized surface strain, which also provides opportunities for information encryption by encoding the varied resonances under strain.

Article Details

Volume / Issue Vol. 126, Issue 20
Published May 19, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (10)

W

Wei Tao

Center for Nanomedicine and Department of Anesthesiology, Perioperative and Pain Medicine, Brigham and Women’s Hospital

J

Jonas Haas

Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,

Y

Yuyang Wu

P

P. Christian Simo

Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,

W

William d'Orsonnens

Laboratory Light, Nanomaterials and Nanotechnologies—L2n, University of Technology of Troyes and CNRS UMR 7076 3 , 10004 Troyes,

A

Abdelhamid Hmima

Laboratory Light, Nanomaterials and Nanotechnologies—L2n, University of Technology of Troyes and CNRS UMR 7076 3 , 10004 Troyes,

F

Florian Laible

Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,

J

Jannik Meyer

Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,

T

Thomas Maurer

Laboratory Light, Nanomaterials and Nanotechnologies—L2n, University of Technology of Troyes and CNRS UMR 7076 3 , 10004 Troyes,

M

Monika Fleischer

Institute for Applied Physics and Center LISA+, Eberhard Karls University Tübingen 2 , 72076 Tübingen,