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February 24, 2026The Journal of Physical Chemistry Letters0 citationsOpen Access

Phase-Resolved Two-Dimensional Infrared Spectroscopy of Solution-Phase Vibrational Polaritons on Gold Antenna Meta-Surfaces

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SSShmuel SufrinBCBar CohnLCLev Chuntonov

Key Points

  • The aim is to understand vibro-polariton properties generated in infrared meta-surfaces.
  • Utilized linear and third-order nonlinear two-dimensional infrared spectroscopy (2DIR)
  • Employed electromagnetic analysis for characterizing polaritons
  • Investigated phase-resolved 2DIR line shapes to analyze vibro-polaritons
  • Revealed the surface-confined nature and quantum state characteristics of vibro-polaritons
  • Highlighted the anharmonic behavior of vibro-polaritons
  • Showed a qualitative match between experimental data and theoretical models

Abstract

Vibrational polaritons are quasiparticles that form when optically allowed molecular vibrations strongly couple to photonic resonances of infrared cavity. Understanding vibro-polariton properties is essential to harness their potential in fields from synthetic chemistry to quantum technologies. We studied vibro-polaritons generated with infrared meta-surfaces─high-optical-quality arrays of gold microantennas. Linear and third-order nonlinear two-dimensional infrared spectroscopy (2DIR) combined with electromagnetic analysis emphasized, on one hand, the surface-confined character of vibro-polariton waves and their quantum state nature on the other. Phase-resolved 2DIR line shapes highlighted the anharmonic character of vibro-polaritons and revealed coupling with the excitation of molecular-like reservoir states. Experimental data were qualitatively described by nonlinear response functions with signal phases obtained from electromagnetic calculations and anharmonic constants of few wavenumbers. Such agreement allows us to rule out alternative scenarios like selective signal enhancement from inhomogeneous distribution of molecular frequencies or signal amplification by weak coupling to photonic resonances.

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Cite This Study

Sufrin et al. (2026) studied this question.

synapsesocial.com/papers/699d405ade8e28729cf65553https://doi.org/10.1021/acs.jpclett.6c00009
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