Literature DB >> 33427462

Controlling the Spatial and Momentum Distributions of Plasmonic Carriers: Volume vs Surface Effects.

Jacob Pettine1,2, Sean M Meyer3, Fabio Medeghini1, Catherine J Murphy3,4, David J Nesbitt1,2,5.   

Abstract

Spatial and momentum distributions of excited charge carriers in nanoplasmonic systems depend sensitively on optical excitation parameters and nanoscale geometry, which therefore control the efficiency and functionality of plasmon-enhanced catalysts, photovoltaics, and nanocathodes. Growing appreciation over the past decade for the different roles of volume- vs surface-mediated excitation in such systems has underscored the need for explicit separation and quantification of these pathways. Toward these ends, we utilize angle-resolved photoelectron velocity map imaging to distinguish these processes in gold nanorods of different aspect ratios down to the spherical limit. Despite coupling to the longitudinal surface plasmon, we find that resonantly excited nanorods always exhibit transverse (sideways) multiphoton photoemission distributions due to photoexcitation within volume field enhancement regions rather than at the tip hot spots. This behavior is accurately reproduced via ballistic Monte Carlo modeling, establishing that volume-excited electrons primarily escape through the nanorod sides. Furthermore, we demonstrate optical control over the photoelectron angular distributions via a screening-induced transition from volume (transverse/side) to surface (longitudinal/tip) photoemission with red detuning of the excitation laser. Frequency-dependent cross sections are separately quantified for these mechanisms by comparison with theoretical calculations, combining volume and surface velocity-resolved photoemission modeling. Based on these results, we identify nanomaterial-specific contributions to the photoemission cross sections and offer general nanoplasmonic design principles for controlling photoexcitation/emission distributions via geometry- and frequency-dependent tuning of the volume vs surface fields.

Keywords:  Monte Carlo; angle-resolved photoemission; gold nanorods; multiphoton photoemission; single particle; ultrafast; velocity map imaging

Year:  2021        PMID: 33427462     DOI: 10.1021/acsnano.0c09045

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Energy and Momentum Distribution of Surface Plasmon-Induced Hot Carriers Isolated via Spatiotemporal Separation.

Authors:  Michael Hartelt; Pavel N Terekhin; Tobias Eul; Anna-Katharina Mahro; Benjamin Frisch; Eva Prinz; Baerbel Rethfeld; Benjamin Stadtmüller; Martin Aeschlimann
Journal:  ACS Nano       Date:  2021-12-01       Impact factor: 15.881

  1 in total

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