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Autori principali: Pokhrel, Yogesh, Tack, Meike, Reichenberger, Sven, Levantino, Matteo, Plech, Anton
Natura: Preprint
Pubblicazione: 2025
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Accesso online:https://arxiv.org/abs/2510.02011
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author Pokhrel, Yogesh
Tack, Meike
Reichenberger, Sven
Levantino, Matteo
Plech, Anton
author_facet Pokhrel, Yogesh
Tack, Meike
Reichenberger, Sven
Levantino, Matteo
Plech, Anton
contents Laser fragmentation of suspended microparticles is an upcoming alternative to laser ablation in liquid (LAL) that allows to streamline the the delivery process and optimize the irradiation conditions for best efficiency. Yet, the structural basis of this process is not well understood to date. Herein we employed ultrafast x-ray scattering upon picosecond laser excitation of a gold microparticle suspension in order to understand the thermal kinetics as well as structure evolution after fragmentation. The experiments are complemented by simulations according to the two-temperature model to verify the spatiotemporal temperature distribution. It is found that above a fluence threshold of 750 J/m$^2$ the microparticles are fragmented within a nanosecond into several large pieces where the driving force is the strain due to a strongly inhomogenous heat distribution on the one hand and stress confinement due to the ultrafast heating compared to stress propagation on the other hand. The additional limited formation of small clusters is attributed to photothermal decomposition on the front side of the microparticles at the fluence of 2700 J/m$^2$.
format Preprint
id arxiv_https___arxiv_org_abs_2510_02011
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Pulsed-laser induced gold microparticle fragmentation by thermal strain
Pokhrel, Yogesh
Tack, Meike
Reichenberger, Sven
Levantino, Matteo
Plech, Anton
Mesoscale and Nanoscale Physics
Laser fragmentation of suspended microparticles is an upcoming alternative to laser ablation in liquid (LAL) that allows to streamline the the delivery process and optimize the irradiation conditions for best efficiency. Yet, the structural basis of this process is not well understood to date. Herein we employed ultrafast x-ray scattering upon picosecond laser excitation of a gold microparticle suspension in order to understand the thermal kinetics as well as structure evolution after fragmentation. The experiments are complemented by simulations according to the two-temperature model to verify the spatiotemporal temperature distribution. It is found that above a fluence threshold of 750 J/m$^2$ the microparticles are fragmented within a nanosecond into several large pieces where the driving force is the strain due to a strongly inhomogenous heat distribution on the one hand and stress confinement due to the ultrafast heating compared to stress propagation on the other hand. The additional limited formation of small clusters is attributed to photothermal decomposition on the front side of the microparticles at the fluence of 2700 J/m$^2$.
title Pulsed-laser induced gold microparticle fragmentation by thermal strain
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2510.02011