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Nonequilibrium Thermodynamics of Colloidal Gold Nanocrystals Monitored by Ultrafast Electron Diffraction and Optical Scattering Microscopy

Authors :
Ming-Fu Lin
Vanessa Wood
Aaron M. Lindenberg
Eric M. Janke
Alberto Salleo
Xijie Wang
Igor Coropceanu
Suji Park
Nuri Yazdani
Benjamin L. Cotts
Dmitri V. Talapin
Alexander H. Reid
James K. Utterback
Vladislav Kamysbayev
Marc Zajac
Michael Kozina
Aditya Sood
Stephen Weathersby
Naomi S. Ginsberg
Xiaozhe Shen
Burak Guzelturk
Standford University
University of Colorado [Boulder]
University of Chicago
Stanford University
Laboratory of Nanoelectronics [ETH Zürich]
Eidgenössische Technische Hochschule - Swiss Federal Institute of Technology [Zürich] (ETH Zürich)
University of California [Berkeley]
University of California
Source :
ACS Nano, ACS Nano, American Chemical Society, 2020, 14 (4), pp.4792-4804. ⟨10.1021/acsnano.0c00673⟩, ACS nano, vol 14, iss 4
Publication Year :
2020

Abstract

Metal nanocrystals exhibit important optoelectronic and photocatalytic functionalities in response to light. These dynamic energy conversion processes have been commonly studied by transient optical probes to date, but an understanding of the atomistic response following photoexcitation has remained elusive. Here, we use femtosecond resolution electron diffraction to investigate transient lattice responses in optically excited colloidal gold nanocrystals, revealing the effects of nanocrystal size and surface ligands on the electron-phonon coupling and thermal relaxation dynamics. First, we uncover a strong size effect on the electron-phonon coupling, which arises from reduced dielectric screening at the nanocrystal surfaces and prevails independent of the optical excitation mechanism (i.e., inter- and intraband). Second, we find that surface ligands act as a tuning parameter for hot carrier cooling. Particularly, gold nanocrystals with thiol-based ligands show significantly slower carrier cooling as compared to amine-based ligands under intraband optical excitation due to electronic coupling at the nanocrystal/ligand interfaces. Finally, we spatiotemporally resolve thermal transport and heat dissipation in photoexcited nanocrystal films by combining electron diffraction with stroboscopic elastic scattering microscopy. Taken together, we resolve the distinct thermal relaxation time scales ranging from 1 ps to 100 ns associated with the multiple interfaces through which heat flows at the nanoscale. Our findings provide insights into optimization of gold nanocrystals and their thin films for photocatalysis and thermoelectric applications.

Details

ISSN :
1936086X and 19360851
Volume :
14
Issue :
4
Database :
OpenAIRE
Journal :
ACS nano
Accession number :
edsair.doi.dedup.....ea6f4fd9568444a938dc0f298749c17f
Full Text :
https://doi.org/10.1021/acsnano.0c00673⟩