The dynamics of plasmon-induced hot carrier creation in colloidal gold

A Anna Wach R Robert Bericat-Vadell C Camila Bacellar (Paul-Scherrer Institute) C Claudio Cirelli (Paul-Scherrer Institute) P Philip J. M. Johnson (Paul-Scherrer Institute) R Rebeca G. Castillo (Laboratory of Ultrafast Spectroscopy) V Vitor R. Silveira P Peter Broqvist (Department of Chemistry-Ångström, Structural Chemistry Division, Uppsala University 2 , Lägerhyddsvägen 1, Uppsala 751 20,) J Jolla Kullgren (Department of Chemistry-Ångström, Structural Chemistry Division, Uppsala University 2 , Lägerhyddsvägen 1, Uppsala 751 20,) A Alexey Maximenko (National Synchrotron Radiation Centre SOLARIS, Jagiellonian University, Czerwone Maki 98, Kraków 30-392, Poland) T Tomasz Sobol E Ewa Partyka-Jankowska P Peter Nordlander (Laboratory for Nanophotonics, Rice University) N Naomi J. Halas (Department of Electrical and Computer Engineering, Rice University) J Jakub Szlachetko J Jacinto Sá (Department of Chemistry-Ångström, Physical-Chemistry Division, Uppsala University 1 , Lägerhyddsvägen 1, Uppsala 751 20,)

Abstract

Abstract The generation and dynamics of plasmon-induced hot carriers in gold nanoparticles offer crucial insights into nonequilibrium states for energy applications, yet the underlying mechanisms remain experimentally elusive. Here, we leverage ultrafast X-ray absorption spectroscopy (XAS) to directly capture hot carrier dynamics with sub-50 fs temporal resolution, providing clear evidence of plasmon decay mechanisms. We observe the sequential processes of Landau damping (~25 fs) and hot carrier thermalization (~1.5 ps), identifying hot carrier formation as a significant decay pathway. Energy distribution measurements reveal carriers in non-Fermi-Dirac states persisting beyond 500 fs and observe electron populations exceeding single-photon excitation energy, indicating the role of an Auger heating mechanism alongside traditional impact excitation. These findings deepen the understanding of hot carrier behavior under localized surface plasmon resonance, offering valuable implications for applications in photocatalysis, photovoltaics, and phototherapy. This work establishes a methodological framework for studying hot carrier dynamics, opening avenues for optimizing energy transfer processes in nanoscale plasmonic systems.

Article Details

Volume / Issue Vol. 16, Issue 1
Published March 07, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (16)

A

Anna Wach

R

Robert Bericat-Vadell

C

Camila Bacellar

Paul-Scherrer Institute

C

Claudio Cirelli

Paul-Scherrer Institute

P

Philip J. M. Johnson

Paul-Scherrer Institute

R

Rebeca G. Castillo

Laboratory of Ultrafast Spectroscopy

V

Vitor R. Silveira

P

Peter Broqvist

Department of Chemistry-Ångström, Structural Chemistry Division, Uppsala University 2 , Lägerhyddsvägen 1, Uppsala 751 20,

J

Jolla Kullgren

Department of Chemistry-Ångström, Structural Chemistry Division, Uppsala University 2 , Lägerhyddsvägen 1, Uppsala 751 20,

A

Alexey Maximenko

National Synchrotron Radiation Centre SOLARIS, Jagiellonian University, Czerwone Maki 98, Kraków 30-392, Poland

T

Tomasz Sobol

E

Ewa Partyka-Jankowska

P

Peter Nordlander

Laboratory for Nanophotonics, Rice University

N

Naomi J. Halas

Department of Electrical and Computer Engineering, Rice University

J

Jakub Szlachetko

J

Jacinto Sá

Department of Chemistry-Ångström, Physical-Chemistry Division, Uppsala University 1 , Lägerhyddsvägen 1, Uppsala 751 20,