There is considerable evidence from new generations of high resolution microscopies and scattering techniques for intrinsically multiscale structures and dynamics in complex transition-metal oxides. In particular, the coexistence of submicrometer-size insulating and metallic domains in the same sample of perovskite manganites is believed to be crucial to the understanding of colossal magnetoresistance in these materials, and has been a puzzle to both theorists and experimentalists. In this work, we demonstrate, using an atomic-scale description of lattice distortions and long-range strains, that the presence of multiple local energy minimum states with different distortions provides a natural mechanism for such multiphase coexistence within the same material. The framework provides a basis for engineering nanoscale patterns of metallic and insulating phases and understanding other novel features observed in manganites, such as precursor short-range ordering and quasielastic scattering near the phase-transition temperature, hysteretic and glassy dynamics, metastability, and photoinduced insulator-metal transition.
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15 April 2006
Research Article|
Magnetism and Magnetic Materials|
April 18 2006
Model for strain-induced metal-insulator phase coexistence in colossal magnetoresistive perovskite manganites (invited) Available to Purchase
K. H. Ahn;
K. H. Ahn
a)
Advanced Photon Source,
Argonne National Laboratory
, Argonne, Illinois 60439
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T. Lookman;
T. Lookman
Theoretical Division,
Los Alamos National Laboratory
, Los Alamos, New Mexico 87545
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A. R. Bishop
A. R. Bishop
Theoretical Division,
Los Alamos National Laboratory
, Los Alamos, New Mexico 87545
Search for other works by this author on:
K. H. Ahn
a)
Advanced Photon Source,
Argonne National Laboratory
, Argonne, Illinois 60439
T. Lookman
Theoretical Division,
Los Alamos National Laboratory
, Los Alamos, New Mexico 87545
A. R. Bishop
Theoretical Division,
Los Alamos National Laboratory
, Los Alamos, New Mexico 87545a)
Author to whom correspondence should be addressed; electronic mail: [email protected]
J. Appl. Phys. 99, 08A703 (2006)
Citation
K. H. Ahn, T. Lookman, A. R. Bishop; Model for strain-induced metal-insulator phase coexistence in colossal magnetoresistive perovskite manganites (invited). J. Appl. Phys. 15 April 2006; 99 (8): 08A703. https://doi.org/10.1063/1.2162337
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