Structural pathways for ultrafast melting of optically excited thin polycrystalline Palladium films
Abstract
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 melting. 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 laser-excited Pd. Furthermore, we highlight the role of pre-existing and transiently generated crystal defects in the transition to the liquid state.
Keywords
Cite
@article{arxiv.2309.10747,
title = {Structural pathways for ultrafast melting of optically excited thin polycrystalline Palladium films},
author = {Jerzy Antonowicz and Adam Olczak and Klaus Sokolowski-Tinten and Peter Zalden and Igor Milov and Przemysław Dzięgielewski and Christian Bressler and Henry N. Chapman and Michał Chojnacki and Piotr Dłużewski and Angel Rodriguez-Fernandez and Krzysztof Fronc and Wojciech Gawełda and Konstantinos Georgarakis and Alan L. Greer and Iwanna Jacyna and Robbert W. E. van de Kruijs and Radosław Kamiński and Dmitry Khakhulin and Dorota Klinger and Katarzyna M. Kosyl and Katharina Kubicek and Kirill P. Migdal and Roman Minikayev and Nikolaos T. Panagiotopoulos and Marcin Sikora and Peihao Sun and Hazem Yousef and Wiktoria Zajkowska and Vasily V. Zhakhovski and Ryszard Sobierajski},
journal= {arXiv preprint arXiv:2309.10747},
year = {2023}
}
Comments
main manuscript 33 pages, 9 figures; supplemental material 19 pages, 13 figures - all in one file