4.8 Article

Atomistic Molecular Dynamic Simulations of Multiferroics

Journal

PHYSICAL REVIEW LETTERS
Volume 109, Issue 6, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.109.067203

Keywords

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Funding

  1. Office of Basic Energy Sciences [ER-46612]
  2. NSF [DMR-0701558, DMR-1066158, 0959124]
  3. ARO [W911NF-12-1-0085]
  4. ONR [N00014-11-1-0384, N00014-08-1-0915, N00014-07-1-0825]
  5. National Natural Science Foundation of China [10904122]
  6. Direct For Mathematical & Physical Scien
  7. Division Of Materials Research [1066158] Funding Source: National Science Foundation
  8. Division Of Computer and Network Systems
  9. Direct For Computer & Info Scie & Enginr [0959124] Funding Source: National Science Foundation
  10. Office Of The Director
  11. EPSCoR [0918970] Funding Source: National Science Foundation

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A first-principles-based approach is developed to simulate dynamical properties, including complex permittivity and permeability in the GHz-THz range, of multiferroics at finite temperatures. It includes both structural degrees of freedom and magnetic moments as dynamic variables in Newtonian and Landau-Lifshitz-Gilbert (LLG) equations within molecular dynamics, respectively, with the couplings between these variables being incorporated. The use of a damping coefficient and of the fluctuation field in the LLG equations is required to obtain equilibrated magnetic properties at any temperature. No electromagnon is found in the spin-canted structure of BiFeO3. On the other hand, two magnons with very different frequencies are predicted via the use of this method. The smallest-in-frequency magnon corresponds to oscillations of the weak ferromagnetic vector in the basal plane being perpendicular to the polarization while the second magnon corresponds to magnetic dipoles going in and out of this basal plane. The large value of the frequency of this second magnon is caused by static couplings between magnetic dipoles with electric dipoles and oxygen octahedra tiltings.

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