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arXiv · 2605.00575

Plasmon Induced Delocalized Second-Harmonic Generation Towards Buried-Interface Spectroscopy

Abstract

Second-harmonic generation microscopy is a powerful technique capable of probing local crystal symmetries and electric fields at interfaces. However, it often suffers from weak signal strength and is difficult to understand in multilayer systems where many materials can give competing signal contributions. In this work we present direct observation of delocalized, surface plasmon polariton-mediated second-harmonic generation on gold monocrystalline surfaces and structures. We generate second-harmonic light up to 35 um from the excitation spot and, excitingly, we obtain signal from atomically flat surfaces without a fundamental excitation beam present in the same region. We reveal that this process arises from the interaction of two counter-propagating surface plasmon polaritons, which we believe to be the first observation of this process at the microscale. This signal has the same polarisation dependence as localised second-harmonic generation and is emitted in a collimated beam travelling perpendicular to the sample surface. In part due to local electric field enhancements, we were able to observe these signals on a CMOS camera with 1 s exposure and no gain using an industrial-grade pulsed laser. Our results enable wide area multilayer samples to be probed using a single excitation beam, with applications including in energy, catalysis and single particle surface sensing.

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Alan R. Bowman, Sergejs Boroviks, Omer Can Karaman, Laura M. Herz, Olivier J. F. Martin, Giulia Tagliabue. 2026-05-01. Plasmon Induced Delocalized Second-Harmonic Generation Towards Buried-Interface Spectroscopy. https://arxiv.org/abs/2605.00575

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