Glass-like recovery of antiferromagnetic spin ordering in a photo-excited manganite Pr0.7Ca0.3MnO3

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作者
S. Y. Zhou
M. C. Langner
Y. Zhu
Y.-D. Chuang
M. Rini
T. E. Glover
M. P. Hertlein
A. G. Cruz Gonzalez
N. Tahir
Y. Tomioka
Y. Tokura
Z. Hussain
R. W. Schoenlein
机构
[1] Lawrence Berkeley National Laboratory,Materials Sciences Division
[2] Tsinghua University,State Key Laboratory of Low Dimensional Quantum Physics and Department of Physics
[3] Advanced Light Source,Department of Applied Science
[4] Lawrence Berkeley National Laboratory,Department of Applied Physics
[5] University of California,undefined
[6] National Center for Physics,undefined
[7] Nanoelectronics Research Institute,undefined
[8] National Institute of Advanced Industrial Science and Technology (AIST) Tsukuba Central 4,undefined
[9] University of Tokyo,undefined
[10] Cross-Correlated Materials Research Group (CMRG) and Correlated Electron Research Group (CERG),undefined
[11] Advanced Science Institute,undefined
[12] RIKEN,undefined
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摘要
Electronic orderings of charges, orbitals and spins are observed in many strongly correlated electron materials and revealing their dynamics is a critical step toward undertsanding the underlying physics of important emergent phenomena. Here we use time-resolved resonant soft x-ray scattering spectroscopy to probe the dynamics of antiferromagnetic spin ordering in the manganite Pr0.7Ca0.3MnO3 following ultrafast photo-exitation. Our studies reveal a glass-like recovery of the spin ordering and a crossover in the dimensionality of the restoring interaction from quasi-1D at low pump fluence to 3D at high pump fluence. This behavior arises from the metastable state created by photo-excitation, a state characterized by spin disordered metallic droplets within the larger charge- and spin-ordered insulating domains. Comparison with time-resolved resistivity measurements suggests that the collapse of spin ordering is correlated with the insulator-to-metal transition, but the recovery of the insulating phase does not depend on the re-establishment of the spin ordering.
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