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Observing femtosecond orbital dynamics in ultrafast Ge melting with time-resolved resonant X-ray scattering

Authors :
Heemin Lee
Je Young Ahn
Sae Hwan Chun
Do Hyung Cho
Daeho Sung
Chulho Jung
Jaeyong Shin
Junha Hwang
Sung Soo Ha
Hoyoung Jang
Byeong-Gwan Cho
Sunam Kim
Jaeku Park
Daewoong Nam
Intae Eom
Ji Hoon Shim
Do Young Noh
Yungok Ihm
Changyong Song
Source :
IUCrJ, Vol 10, Iss 6, Pp 700-707 (2023)
Publication Year :
2023
Publisher :
International Union of Crystallography, 2023.

Abstract

Photoinduced nonequilibrium phase transitions have stimulated interest in the dynamic interactions between electrons and crystalline ions, which have long been overlooked within the Born–Oppenheimer approximation. Ultrafast melting before lattice thermalization prompted researchers to revisit this issue to understand ultrafast photoinduced weakening of the crystal bonding. However, the absence of direct evidence demonstrating the role of orbital dynamics in lattice disorder leaves it elusive. By performing time-resolved resonant X-ray scattering with an X-ray free-electron laser, we directly monitored the ultrafast dynamics of bonding orbitals of Ge to drive photoinduced melting. Increased photoexcitation of bonding electrons amplifies the orbital disturbance to expedite the lattice disorder approaching the sub-picosecond scale of the nonthermal regime. The lattice disorder time shows strong nonlinear dependence on the laser fluence with a crossover behavior from thermal-driven to nonthermal-dominant kinetics, which is also verified by ab initio and two-temperature molecular dynamics simulations. This study elucidates the impact of bonding orbitals on lattice stability with a unifying interpretation on photoinduced melting.

Details

Language :
English
ISSN :
20522525
Volume :
10
Issue :
6
Database :
Directory of Open Access Journals
Journal :
IUCrJ
Publication Type :
Academic Journal
Accession number :
edsdoj.9db7190c112c4df7acb6c0f56563f179
Document Type :
article
Full Text :
https://doi.org/10.1107/S2052252523007935