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Atomic-scale visualization of inertial dynamics

Authors :
Tristan G. Matthews
Paul H. Fuoss
Rasmus Ischebeck
Richard W. Lee
Janos Hajdu
Dana Weinstein
D. van der Spoel
A. L. Cavalieri
Andrew MacPhee
Carl Caleman
Francesco Sette
J. Arthur
J. Schneider
Justin Wark
Seung-Mo Lee
Tue Hansen
Aaron M. Lindenberg
David A. Reis
E. Bong
K. Luening
C. Blome
J. Sheppard
David Fritz
R. A. Akre
J. Rudati
M. Bergh
Chi-Chang Kao
Henry N. Chapman
Simone Techert
D. P. Siddons
Thomas Tschentscher
D. P. Lowney
Roger Falcone
Jörgen Larsson
Thomas K. Allison
Patrick Krejcik
Klaus Sokolowski-Tinten
Kelly J. Gaffney
Ola Synnergren
Holger Schlarb
J. Als-Nielsen
S. Duesterer
Nicusor Timneanu
H. Schulte-Schrepping
G. Huldt
Sean Brennan
D. von der Linde
Jerome B. Hastings
R. Pahl
O. Hignette
Philip H. Bucksbaum
Source :
Science
Publication Year :
2016

Abstract

The motion of atoms on interatomic potential energy surfaces is fundamental to the dynamics of liquids and solids. An accelerator-based source of femtosecond x-ray pulses allowed us to follow directly atomic displacements on an optically modified energy landscape, leading eventually to the transition from crystalline solid to disordered liquid. We show that, to first order in time, the dynamics are inertial, and we place constraints on the shape and curvature of the transition-state potential energy surface. Our measurements point toward analogies between this nonequilibrium phase transition and the short-time dynamics intrinsic to equilibrium liquids.

Details

Language :
English
Database :
OpenAIRE
Journal :
Science
Accession number :
edsair.doi.dedup.....b5c1af124a99aa72b84dd6f9cf8ae4e0