3D Atomic-Scale Dynamics of Laser-Light-Induced Restructuring of Nanoparticles Unraveled by Electron Tomography

Publication date

2021-08-19

Authors

Albrecht, W.ISNI 0000000419574792
Arslan Irmak, Ece
Altantzis, ThomasISNI 0000000512489496
Pedrazo-Tardajos, Adrián
Skorikov, Alexander
Deng, Tian SongISNI 0000000506363272
van der Hoeven, JessiISNI 0000000493299290
van Blaaderen, AlfonsISNI 0000000388251965
Van Aert, Sandra
Bals, Sara

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

taverne

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.

Keywords

3D atomic structure, femtosecond laser excitation, gold nanorods, molecular dynamics, reshaping, Taverne, General Materials Science, Mechanics of Materials, Mechanical Engineering

Citation

Albrecht, W, Arslan Irmak, E, Altantzis, T, Pedrazo-Tardajos, A, Skorikov, A, Deng, T S, van der Hoeven, J E S, van Blaaderen, A, Van Aert, S & Bals, S 2021, '3D Atomic-Scale Dynamics of Laser-Light-Induced Restructuring of Nanoparticles Unraveled by Electron Tomography', Advanced Materials, vol. 33, no. 33, 2100972, pp. 1-10. https://doi.org/10.1002/adma.202100972