Visualizing hot carrier dynamics by nonlinear optical microscopy at the atomic length scale

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Hauptverfasser: Luo, Yang, Sheng, Shaoxiang, Schirato, Andrea, Martin-Jimenez, Alberto, Della Valle, Giuseppe, Cerullo, Giulio, Kern, Klaus, Garg, Manish
Format: Preprint
Veröffentlicht: 2024
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author Luo, Yang
Sheng, Shaoxiang
Schirato, Andrea
Martin-Jimenez, Alberto
Della Valle, Giuseppe
Cerullo, Giulio
Kern, Klaus
Garg, Manish
author_facet Luo, Yang
Sheng, Shaoxiang
Schirato, Andrea
Martin-Jimenez, Alberto
Della Valle, Giuseppe
Cerullo, Giulio
Kern, Klaus
Garg, Manish
contents Probing and manipulating the spatiotemporal dynamics of hot carriers in nanoscale metals is crucial to a plethora of applications ranging from nonlinear nanophotonics to single molecule photochemistry. The direct investigation of these highly non-equilibrium carriers requires the experimental capability of high energy resolution (~ meV) broadband femtosecond spectroscopy. When considering the ultimate limits of atomic scale structures, this capability has remained out of reach until date. Using a two color femtosecond pump-probe spectroscopy, we present here the real-time tracking of hot carrier dynamics in a well-defined plasmonic picocavity, formed in the tunnel junction of a scanning tunneling microscope (STM). The excitation of hot carriers in the picocavity enables ultrafast all optical control over the broadband (~ eV) anti Stokes electronic resonance Raman scattering (ERRS) and the four-wave mixing (FWM) signals generated at the atomic length scale. By mapping the ERRS and FWM signals from a single graphene nanoribbon (GNR), we demonstrate that both signals are more efficiently generated along the edges of the GNR: a manifestation of atomic-scale nonlinear optical microscopy. This demonstration paves the way to the development of novel ultrafast nonlinear picophotonic platforms, affording unique opportunities in a variety of contexts, from the direct investigation of non equilibrium light matter interactions in complex quantum materials, to the development of robust strategies for hot carriers harvesting in single molecules and the next generation of active metasurfaces with deep-sub-wavelength meta-atoms.
format Preprint
id arxiv_https___arxiv_org_abs_2411_04441
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Visualizing hot carrier dynamics by nonlinear optical microscopy at the atomic length scale
Luo, Yang
Sheng, Shaoxiang
Schirato, Andrea
Martin-Jimenez, Alberto
Della Valle, Giuseppe
Cerullo, Giulio
Kern, Klaus
Garg, Manish
Optics
Applied Physics
Probing and manipulating the spatiotemporal dynamics of hot carriers in nanoscale metals is crucial to a plethora of applications ranging from nonlinear nanophotonics to single molecule photochemistry. The direct investigation of these highly non-equilibrium carriers requires the experimental capability of high energy resolution (~ meV) broadband femtosecond spectroscopy. When considering the ultimate limits of atomic scale structures, this capability has remained out of reach until date. Using a two color femtosecond pump-probe spectroscopy, we present here the real-time tracking of hot carrier dynamics in a well-defined plasmonic picocavity, formed in the tunnel junction of a scanning tunneling microscope (STM). The excitation of hot carriers in the picocavity enables ultrafast all optical control over the broadband (~ eV) anti Stokes electronic resonance Raman scattering (ERRS) and the four-wave mixing (FWM) signals generated at the atomic length scale. By mapping the ERRS and FWM signals from a single graphene nanoribbon (GNR), we demonstrate that both signals are more efficiently generated along the edges of the GNR: a manifestation of atomic-scale nonlinear optical microscopy. This demonstration paves the way to the development of novel ultrafast nonlinear picophotonic platforms, affording unique opportunities in a variety of contexts, from the direct investigation of non equilibrium light matter interactions in complex quantum materials, to the development of robust strategies for hot carriers harvesting in single molecules and the next generation of active metasurfaces with deep-sub-wavelength meta-atoms.
title Visualizing hot carrier dynamics by nonlinear optical microscopy at the atomic length scale
topic Optics
Applied Physics
url https://arxiv.org/abs/2411.04441