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Updated: Aug 6, 2026

Demonstration of Equal-Intensity Beam Generation by Dielectric Metasurfaces
Published on: June 7, 2019
Electrochemical Control of Tunable Infrared Nanocrystal Metasurfaces
Woo Je Chang1,2, Zarko Sakotic3, Madeline Brown3
1McKetta Department of Chemical Engineering, University of Texas at Austin, Austin, Texas78712, United States.
Abstract:
Dynamic control of photonic materials at mid-infrared wavelengths is essential for applications spanning thermal management, active imaging, and optical signal processing, yet achieving strong modulation within small material volumes remains a central challenge. Conventional approaches rely on lithographically patterned metasurfaces with limited scalability, or on ultrathin materials with weak light-matter interaction. Here, we show that cavity-coupled assemblies of sub-10 nm plasmonic tin-doped indium oxide nanocrystals function as dynamic metasurfaces with electrochemically switchable linear and nonlinear optical responses. By integrating colloidal nanocrystals into a photonic architecture, we colocate permittivity modulation and electromagnetic field confinement within the same nanoscale volume, achieving 77% absolute reflection modulation. Synthetic control of tin doping provides spectral selectivity across 2.5-4 μm, while solution processing yields centimeter-scale device uniformity. Beyond linear modulation, voltage-controlled near-field enhancement enables electrically switchable ultrafast nonlinear response with 100% relative reflection modulation (from an absolute 3 to 6%) and 0.25 ps recovery time, enabling dual-time scale optical control.

