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Science Advances· 2026Q1

Electro-optic modulation of coherent and incoherent mid-IR radiation in two-dimensional arrays

Jared F. Sisler, Phillippe Pearson, Michael D. Kelzenberg, Andrei Faraon et al.

Short summary

A new electrically addressable metasurface modulates coherent and incoherent mid-IR radiation in two dimensions using field-effect free-carrier depletion in indium tin oxide.

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Key points

  • Developed an electrically addressable metasurface for two-dimensional modulation of mid-IR radiation.
  • Device uses field-effect free-carrier depletion in indium tin oxide coupled to a gap plasmon resonator.
  • Demonstrated tunable diffraction of coherent mid-IR light by addressing 32 individual elements.
  • Showcased scalable perimeter-addressed driving for two-dimensional tunable diffraction and modulated emissivity with reconfigurable patterns.

AI-generated from the title and abstract; the full text is not read.

Abstract

Light in the mid-infrared (mid-IR) spans wavelengths from 3 to 8 micrometers and is important to many applications such as gas sensing and thermal imaging. Due to materials challenges, there is now a lack of mid-IR reconfigurable optical elements. Here, we present an electrically addressable metasurface for modulation of coherent and incoherent mid-IR radiation in two spatial dimensions. Our device achieves optical modulation due to the field-effect free-carrier depletion in a lightly doped (10 19 per cubic centimeter) film of indium tin oxide coupled to a gap plasmon resonator. By addressing 32 individual elements across the metasurface, we first demonstrate tunable diffraction of coherently reflected mid-IR light. Next, we introduce a scalable perimeter-addressed driving scheme for tunable diffraction in two dimensions. Last, we demonstrate modulated emissivity with spatially reconfigurable two-dimensional patterns at elevated temperatures. This work advances the development of solid-state reflective beam-steering devices in the mid-IR and manipulation of thermally emitted incoherent radiation.

The authors' abstract, as published at the source. Science Advances, 2026 · DOI ↗

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Field: Electronic, Optical and Magnetic Materials

Electronic, Optical and Magnetic MaterialsMaterials Science