Publication
Title
3D atomic-scale dynamics of laser-light-induced restructuring of nanoparticles unraveled by electron tomography
Author
Abstract
Understanding light-matter interactions in nanomaterials is crucial for optoelectronic, photonic, and plasmonic applications. Specifically, metal nanoparticles (NPs) strongly interact with light and can undergo shape transformations, fragmentation and ablation upon (pulsed) laser excitation. Despite being vital for technological applications, experimental insight into the underlying atomistic processes is still lacking due to the complexity of such measurements. Herein, atomic resolution electron tomography is performed on the same mesoporous-silica-coated gold nanorod, before and after femtosecond laser irradiation, to assess the missing information. Combined with molecular dynamics (MD) simulations based on the experimentally determined 3D atomic-scale morphology, the complex atomistic rearrangements, causing shape deformations and defect generation, are unraveled. These rearrangements are simultaneously driven by surface diffusion, facet restructuring, and strain formation, and are influenced by subtleties in the atomic distribution at the surface.
Language
English
Source (journal)
Advanced materials. - Weinheim
Publication
Weinheim : Wiley-v c h verlag gmbh , 2021
ISSN
0935-9648
DOI
10.1002/ADMA.202100972
Volume/pages
33 :33 (2021) , 10 p.
Article Reference
2100972
ISI
000671662000001
Pubmed ID
34247423
Medium
E-only publicatie
Full text (Publisher's DOI)
Full text (open access)
Full text (publisher's version - intranet only)
UAntwerpen
Faculty/Department
Research group
Project info
3D Structure of nanomaterials under realistic conditions (REALNANO).
Picometer metrology for light-element nanostructures: making every electron count (PICOMETRICS).
HIERARSACOL: Hierarchical Self Assembly of Colloids: Control and Manipulation from Nano-Granular
Correlating the 3D atomic structure of metal anisotropic nanoparticles with their optical properties (SOPMEN).
Three-dimensional atomic modelling of functional nanocrystalline structures from a single viewing direction.
Smart strategies to break the beam damage limits in transmission electron microscopy.
Publication type
Subject
Affiliation
Publications with a UAntwerp address
External links
Web of Science
Record
Identifier
Creation 30.07.2021
Last edited 02.10.2024
To cite this reference