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Voltage-gated optics and plasmonics enabled by solid-state proton pumping

  • Mantao Huang
  • , Aik Jun Tan
  • , Felix Büttner
  • , Hailong Liu
  • , Qifeng Ruan
  • , Wen Hu
  • , Claudio Mazzoli
  • , Stuart Wilkins
  • , Chuanhua Duan
  • , Joel K.W. Yang
  • , Geoffrey S.D. Beach*
  • *Corresponding author for this work
  • Massachusetts Institute of Technology
  • Brookhaven National Laboratory
  • Singapore University of Technology and Design
  • Boston University
  • Agency for Science, Technology and Research, Singapore

Research output: Contribution to journalArticlepeer-review

Abstract

Devices with locally-addressable and dynamically tunable optical properties underpin emerging technologies such as high-resolution reflective displays and dynamic holography. The optical properties of metals such as Y and Mg can be reversibly switched by hydrogen loading, and hydrogen-switched mirrors and plasmonic devices have been realized, but challenges remain to achieve electrical, localized and reversible control. Here we report a nanoscale solid-state proton switch that allows for electrical control of optical properties through electrochemical hydrogen gating. We demonstrate the generality and versatility of this approach by realizing tunability of a range of device characteristics including transmittance, interference color, and plasmonic resonance. We further discover and exploit a giant modulation of the effective refractive index of the gate dielectric. The simple gate structure permits device thickness down to ~20 nanometers, which can enable device scaling into the deep subwavelength regime, and has potential applications in addressable plasmonic devices and reconfigurable metamaterials.

Original languageEnglish
Article number5030
JournalNature Communications
Volume10
Issue number1
DOIs
StatePublished - 1 Dec 2019
Externally publishedYes

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