Structural dynamics of LaVO3 on the nanosecond time scale
Author(s) -
Matthew Brahlek,
Vladimir A. Stoica,
Jason Lapano,
Lei Zhang,
Hirofumi Akamatsu,
ICheng Tung,
Venkatraman Gopalan,
Donald A. Walko,
Haidan Wen,
J. W. Freeland,
Roman EngelHerbert
Publication year - 2019
Publication title -
structural dynamics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.415
H-Index - 29
ISSN - 2329-7778
DOI - 10.1063/1.5045704
Subject(s) - nanosecond , diffraction , scaling , bond length , materials science , substructure , excitation , length scale , relaxation (psychology) , molecular physics , crystallography , optics , chemistry , physics , crystal structure , mathematics , geometry , psychology , social psychology , laser , structural engineering , quantum mechanics , engineering
Due to the strong dependence of electronic properties on the local bonding environment, a full characterization of the structural dynamics in ultrafast experiments is critical. Here, we report the dynamics and structural refinement at nanosecond time scales of a perovskite thin film by combining optical excitation with time-resolved X-ray diffraction. This is achieved by monitoring the temporal response of both integer and half-integer diffraction peaks of LaVO 3 in response to an above-band-gap 800 nm pump pulse. We find that the lattice expands by 0.1% out of plane, and the relaxation is characterized by a biexponential decay with 2 and 12 ns time scales. We analyze the relative intensity change in half-integer peaks and show that the distortions to the substructure are small: the oxygen octahedral rotation angles decrease by ∼0.3° and La displacements decrease by ∼0.2 pm, which directly corresponds to an ∼0.8° increase in the V-O-V bond-angles, an in-plane V-O bond length reduction of ∼0.3 pm, and an unchanged out-of-plane bond length. This demonstration of tracking the atomic positions in a pump-probe experiment provides experimentally accessible values for structural and electronic tunability in this class of materials and will stimulate future experiments.
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