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Structural pathways for ultrafast melting of optically excited thin polycrystalline Palladium films

delete2024-09-01
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OA
AI
J
Jerzy Antonowicz *
A
Adam Olczak
K
K. Sokolowski-Tinten
P
Peter Zalden
I
Igor Milov
P
Przemysław Dzięgielewski
C
Christian Bressler
H
Henry N. Chapman
M
Michał Chojnacki
P
P. Dłużewski
A
Angel Rodríguez-Fernández
K
K. Fronc
W
Wojciech Gawełda
K
Konstantinos Georgarakis
A
A.L. Greer
R
Robbert Wilhelmus Elisabeth van de Kruijs
R
Radosław Kamiński
D
Dmitry Khakhulin
K
K.M. Kosyl
K
Katharina Kubiček
K
K. P. Migdal
R
R. Minikayev
N
N.T. Panagiotopoulos
M
Marcin Sikora
P
Peihao Sun
H
Hazem Yousef
W
Wiktoria Zajkowska
V
Vasily Zhakhovsky
R
R. Sobierajski *
DOI:10.1016/j.actamat.2024.120043delete
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Abstract

Abstract

En 中文
Due to its extremely short timescale, the non-equilibrium melting of metals is exceptionally difficult to probe experimentally. The knowledge of melting mechanisms is thus based mainly on the results of theoretical predictions. This work reports on the investigation of ultrafast melting of thin polycrystalline Pd films studied by optical laser pump - X-ray free-electron laser probe experiments and molecular-dynamics simulations. By acquiring X-ray diffraction snapshots with sub-picosecond resolution, we capture the sample ' s atomic structure during its transition from the crystalline to the liquid state. Bridging the timescales of experiments and simulations allows us to formulate a realistic microscopic picture of the crystal-liquid transition. According to the experimental data, the melting process gradually accelerates with the increasing density of deposited energy. The molecular dynamics simulations reveal that the transition mechanism progressively varies from heterogeneous, initiated inside the material at structurally disordered grain boundaries, to homogenous, proceeding catastrophically in the crystal volume on a picosecond timescale comparable to that of electron-phonon coupling. We demonstrate that the existing models of strongly non-equilibrium melting, developed for systems with relatively weak electron -phonon coupling, remain valid even for ultrafast heating rates achieved in femtosecond laserexcited Pd. Furthermore, we highlight the role of pre-existing and transiently generated crystal defects in the transition to the liquid state.
Keywords:
Laser processing
Melting
Metals
Molecular dynamics simulation
X-ray diffraction

Journal

Acta Materialia cover
Acta Materialia
IF:
9.3
Papers:
2.0W
Citations:
12.9W

Organization

D
deutsches elektronen-synchrotron (desy)
Scholars:
5.7K
Papers: 4.8K
Citations: 10
P
Polish Academy of Sciences
Scholars:
3.0W
Papers: 3.1W
Citations: 3.1W
A
adam mickiewicz university
Scholars:
6.6K
Papers: 7.1K
Citations: 70
U
University of Warsaw
Scholars:
1.2W
Papers: 1.0W
Citations: 1.1W
E
European XFEL
Scholars:
938
Papers: 380
Citations: 5
R
russian academy of sciences
Scholars:
8.9W
Papers: 5.9W
Citations: 60
U
university of twente
Scholars:
1.5W
Papers: 1.4W
Citations: 9
U
University of Duisburg Essen
Scholars:
2.2W
Papers: 1.7W
Citations: 22
H
Helmholtz Association
Scholars:
13.2W
Papers: 10.7W
Citations: 145
U
University of Cambridge
Scholars:
7.7W
Papers: 7.1W
Citations: 13.7W
W
Warsaw University of Technology
Scholars:
8.3K
Papers: 7.2K
Citations: 5.5K
C
cranfield university
Scholars:
6.1K
Papers: 6.6K
Citations: 1
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