Self-Oscillatory Light Emission in Plasmonic Molecular Tunnel Junctions

Fuente: arXiv
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Main Authors: Zinelli, Riccardo, Wu, Zijia, Nijhuis, Christian A., Lin, Qianqi
Format: Preprint
Published: 2025
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author Zinelli, Riccardo
Wu, Zijia
Nijhuis, Christian A.
Lin, Qianqi
author_facet Zinelli, Riccardo
Wu, Zijia
Nijhuis, Christian A.
Lin, Qianqi
contents Self-oscillators are intriguing due to their ability to sustain periodic motion without periodic stimulus. They remain rare as achieving such behavior requires a balance of energy input, dissipation and non-linear feedback mechanism. Here, we report a molecular-scale optoelectronic self-oscillatory system based on electrically excited plasmons. This system generates light via inelastic electron tunnelling, where electrons lose their energy to molecules and excite the surface plasmon polaritons that decay radiatively. Time-series imaging of photon emission in gold-naphthalene-2-thiol-EGaIn junctions, together with correlation mapping of individual emission spots, reveal long-lived (~1000 s), low-frequency oscillations (1-20 mHz) interspersed with transient high-frequency (20-200 mHz) bursts. This behavior can be explained by attributing individual emission spots to single-molecule resistors that follow Kirchhoff's circuit laws. Induced by tunnelling current, these individual spots emit in a correlated way, self-sustaining the overall oscillatory emission from the whole junction. Our observation is of great interest as it resonates with a broader understanding of similar molecular-scale dynamic systems such as picocavities, offering exciting potential for optoelectronic and sensing applications.
format Preprint
id arxiv_https___arxiv_org_abs_2510_27616
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Self-Oscillatory Light Emission in Plasmonic Molecular Tunnel Junctions
Zinelli, Riccardo
Wu, Zijia
Nijhuis, Christian A.
Lin, Qianqi
Optics
Self-oscillators are intriguing due to their ability to sustain periodic motion without periodic stimulus. They remain rare as achieving such behavior requires a balance of energy input, dissipation and non-linear feedback mechanism. Here, we report a molecular-scale optoelectronic self-oscillatory system based on electrically excited plasmons. This system generates light via inelastic electron tunnelling, where electrons lose their energy to molecules and excite the surface plasmon polaritons that decay radiatively. Time-series imaging of photon emission in gold-naphthalene-2-thiol-EGaIn junctions, together with correlation mapping of individual emission spots, reveal long-lived (~1000 s), low-frequency oscillations (1-20 mHz) interspersed with transient high-frequency (20-200 mHz) bursts. This behavior can be explained by attributing individual emission spots to single-molecule resistors that follow Kirchhoff's circuit laws. Induced by tunnelling current, these individual spots emit in a correlated way, self-sustaining the overall oscillatory emission from the whole junction. Our observation is of great interest as it resonates with a broader understanding of similar molecular-scale dynamic systems such as picocavities, offering exciting potential for optoelectronic and sensing applications.
title Self-Oscillatory Light Emission in Plasmonic Molecular Tunnel Junctions
topic Optics
url https://arxiv.org/abs/2510.27616