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Nonlinear light conversion and infrared photodetection with laser-printed plasmonic metasurfaces supporting bound states in the continuum

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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Abstract

Plasmonic metasurfaces supporting high-quality (Q) resonances offer unprecedented ways for controlling light-matter interaction at the nanoscale, yet scalable fabrication of such sophisticated nanostructures still relies on expensive and multi-step fabrication routes, hindering their practical application. Here, we produced plasmonic metasurfaces composed of the regular arrangement of hollow protruding nanobumps via direct femtosecond laser patterning of thin gold films. By using comprehensive optical modeling, infrared spectroscopy and angle-resolved third harmonic generation experiments, we justified that such laser-printed nanostructures support symmetry-protected plasmonic quasi-bound states in the continuum (qBIC) with a measured Q-factor up to 20. Moreover, under critical coupling conditions that match the radiative and nonradiative losses of the high-Q mode, the metasurfaces demonstrate the third harmonic generation enhanced by a factor of ≈105 as compared to the smooth Au film benchmark, proving structure efficiency for nonlinear conversion. Finally, by taking advantage of the simplicity and straightforward character of the laser printing process, we realized a field-effect transistor device with HgTe quantum dots as an active medium and qBIC-supporting plasmonic metasurface imprinted over drain and source electrodes. The resulting metasurface-empowered device operates at 200 K and 5 V bias voltage and demonstrates superior specific detectivity around 8.7 × 1011 at the plasmonic-qBIC spectral region and fast response time, holding promise for the realization of advanced shortwave infrared photodetectors. © The Author(s) 2026.
Original languageEnglish
Article number23
JournalLight: Science and Applications
Volume15
Online published2 Jan 2026
DOIs
Publication statusPublished - 2026

Funding

The metasurface fabrication and optical measurements were supported by the Russian Science Foundation grant (No. 24-19-00541). The numerical simulations of linear optical properties were supported by the Russian Science Foundation grant (No. 25-22-20034). M.P. and A.S. acknowledge support by the Federal Academic Leadership Program Priority 2030. The fabrication and electrical measurements of the IR photodetectors were supported by the Research Grants Council of Hong Kong SAR (SRFS2324-1S04) and Innovation and Technology Fund of Hong Kong SAR (ITS/027/22MX).

Publisher's Copyright Statement

  • This full text is made available under CC-BY 4.0. https://creativecommons.org/licenses/by/4.0/

RGC Funding Information

  • RGC-funded

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