• Opto-Electronic Engineering
  • Vol. 46, Issue 3, 1 (2019)
Yao Han, Wang Sicong*, Wei Chen, Cao Yaoyu, and Li Xiangping
Author Affiliations
  • [in Chinese]
  • show less
    DOI: 10.12086/oee.2019.180629 Cite this Article
    Yao Han, Wang Sicong, Wei Chen, Cao Yaoyu, Li Xiangping. Microscopic three-temperature model for all-optical switching in GdFeCo[J]. Opto-Electronic Engineering, 2019, 46(3): 1 Copy Citation Text show less
    References

    [1] Iwasaki S. Perpendicular magnetic recording – Evolution and future[J]. IEEE Transactions on Magnetics, 1984, 20(5): 657–662.

    [2] Schewe H, Stephani D. Thin-film inductive heads for perpendicular recording[J]. IEEE Transactions on Magnetics, 1990, 26(6): 2966–2971.

    [3] Nakamura Y, Iwasaki S. On the resolution of perpendicular magnetic head[J]. IEEE Transactions on Magnetics, 1984, 20(1): 105–107.

    [4] Cumpson S R, Hidding P, Coehoorn R. A hybrid recording method using thermally assisted writing and flux sensitive detection[J]. IEEE Transactions on Magnetics, 2000, 36(5): 2271–2275.

    [5] Rottmayer R E, Batra S, Buechel D, et al. Heat-assisted magnetic recording[J]. IEEE Transactions on Magnetics, 2006, 42(10): 2417–2421.

    [6] Kirilyuk A, Kimel A V, Rasing T. Ultrafast optical manipulation of magnetic order[J]. Reviews of Modern Physics, 2010, 82(3): 2731–2784.

    [7] Stanciu C D, Hansteen F, Kimel A V, et al. All-optical magnetic recording with circularly polarized light[J]. Physical Review Letters, 2007, 99(4): 047601.

    [8] Ostler T A, Barker J, Evans R F L, et al. Ultrafast heating as a sufficient stimulus for magnetization reversal in a ferrimagnet[J]. Nature Communications, 2012, 3: 666.

    [9] Gerrits T, van den Berg H A M, Hohlfeld J, et al. Ultrafast precessional magnetization reversal by picosecond magnetic field pulse shaping[J]. Nature, 2002, 418(6897): 509–512.

    [10] Scholl A, Baumgarten L, Jacquemin R, et al. Ultrafast spin dynamics of ferromagnetic thin films observed by fs spin-resolved two-photon photoemission[J]. Physical Review Letters,1997, 79(22): 5146–5149.

    [11] Gilbert L T. A lagrangian formulation of the gyromagnetic equation of the magnetization field[J]. Physical Review, 1955, 100: 1243.

    [12] Landau L D, Lifshitz E. On the theory of the dispersion of magnetic permeability in ferromagnetic bodies[M]. Perspectives in Theoretical Physics. Pergamon, 1992: 51–65.

    [13] Gilbert L T, Kelly M J. Proceedings of the Pittsburgh Conference on Magnetism and Magnetic Materials[M]. New York: American Institute of Electrical Engineers, 1955: 253.

    [14] Dillon F J, Jr. Magnetism II[M]. New York: Academic Press, 1963.

    [15] Kazantseva N, Hinzke D, Nowak U, et al. Towards multiscale modeling of magnetic materials: simulations of FePt[J]. Physical Review B, 2008, 77(18): 184428.

    [16] Garanin A D. Generalized equation of motion for a ferromagnet[J]. Physica A: Statistical Mechanics and its Applications, 1991, 172(3): 470–491.

    [17] Rebei A, Simionato M. Fluctuations of the magnetization in thin films due to conduction electrons[J]. Physical Review B, 2005, 71(17): 174415.

    [18] Kuiper C K, Roth T, Schellekens J A. Spin-orbit enhanced demagnetization rate in Co/Pt-multilayers[J]. Applied Physics Letters, 2014, 105(20): 202402.

    [20] Cornelissen T D, Córdoba R, Koopmans B. Microscopic model for all optical switching in ferromagnets[J]. Applied Physics Letters, 2016, 108(14): 142405.

    [21] Khorsand R A, Savoini M, Kirilyuk A. Role of magnetic circular dichroism in all-optical magnetic recording[J]. Physical Review Letters, 2012, 108(12): 127205.

    [22] Wang S C, Wei C, Feng Y H. All-optical helicity-dependent magnetic switching by first-order azimuthally polarized vortex beams[J]. Physical Review Letters, 2018, 113(17): 171108.

    [23] Wang S C, Cao Y Y, Li X P. Generation of uniformly oriented in-plane magnetization with near-unity purity in 4π microscopy[J]. Optics Letters, 2017, 42(23): 5050–5053.

    [24] Wang S C, Li X P, Zhou J Y, et al. Ultralong pure longitudinal magnetization needle induced by annular vortex binary optics[J]. Optics Letters, 2014, 39(17): 5022–5025.

    [25] Wang S C, Li X P, Zhou J Y, et al. All-optically configuring the inverse Faraday effect for nanoscale perpendicular magnetic recording[J]. Optics Express, 2015, 23(10): 13530–13536.

    [26] Wang S C, Luo J J, Zhu Z Q, et al. All-optical generation of magnetization with arbitrary three-dimensional orientations[J]. Optics Letters, 2018, 43(22): 5551–5554.

    [27] Radu I, Vahaplar K, Stamm C, et al. Transient ferromagnetic-like state mediating ultrafast reversal of antiferromagnetically coupled spins[J]. Nature, 2011, 472(7342): 205–208.

    [28] Evans R F L, Fan W J, Chureemart P. Atomistic spin model simulations of magnetic nanomaterials[J]. Journal of Physics: Condensed Matter, 2014, 26(10): 103202.

    [29] Atxitia U, Chubykalo-Fesenko O. Ultrafast magnetization dynamics rates within the Landau-Lifshitz-Bloch model[J]. Physical Review B, 2011, 84(14): 144414.

    [30] Kazantseva N. Dynamic response of the magnetisation to picosecond heat pulses[D]. York, UK: The University of York, 2008: 1–128.

    CLP Journals

    [1] JIN Xin, HU Ying. Detection of Vehicle Crews Based on Modified Faster R-CNN[J]. Infrared Technology, 2020, 42(11): 1103

    Yao Han, Wang Sicong, Wei Chen, Cao Yaoyu, Li Xiangping. Microscopic three-temperature model for all-optical switching in GdFeCo[J]. Opto-Electronic Engineering, 2019, 46(3): 1
    Download Citation