4.7 Article

Model of ultrafast demagnetization driven by spinorbit coupling in a photoexcited antiferromagnetic insulator Cr2O3

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 146, Issue 24, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.4989957

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Funding

  1. Fundamental Research Funds for the Central Universities [GK201402011]
  2. [NSFC 11504223]

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We theoretically study the dynamic time evolution following laser pulse pumping in an antiferromagnetic insulator Cr2O3. From the photoexcited high-spin quartet states to the long-lived low-spin doublet states, the ultrafast demagnetization processes are investigated by solving the dissipative Schrodinger equation. We find that the demagnetization times are of the order of hundreds of femtoseconds, in good agreement with recent experiments. The switching times could be strongly reduced by properly tuning the energy gaps between the multiplet energy levels of Cr3+. Furthermore, the relaxation times also depend on the hybridization of atomic orbitals in the first photoexcited state. Our results suggest that the selective manipulation of the electronic structure by engineering stress-strain or chemical substitution allows effective control of the magnetic state switching in photoexcited insulating transition-metal oxides. Published by AIP Publishing.

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