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Published in: Physics of Metals and Metallography 3/2020

01-03-2020 | ELECTRICAL AND MAGNETIC PROPERTIES

Pulsed Magnetization Reversal of an Antiferromagnetic Dipole Cell

Authors: A. M. Shutyi, D. I. Sementsov

Published in: Physics of Metals and Metallography | Issue 3/2020

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Abstract

The dynamics of the response of the magnetic moment of two oppositely oriented nanoparticles with different values of uniaxial anisotropy to the action of a short Gaussian pulse of magnetic field is studied in this work. The dependence of the response duration on the pulse parameters is established. It is shown that, by selecting the duration and/or amplitude of the pulse, it is possible to reverse the magnetization of either dipole (in this case, the magnetic moment of the system changes from 0 by \( \pm 2\)) or of both dipoles (the magnetic moment is preserved). The effect of the dipole–dipole interaction on the magnetization reversal is revealed.

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Literature
1.
go back to reference R. Skomski, “Nanomagnetics,” J. Phys.: Condens. Matter. 15, R841–R896 (2003). R. Skomski, “Nanomagnetics,” J. Phys.: Condens. Matter. 15, R841–R896 (2003).
2.
go back to reference E. Z. Meilikhov and R. M. Farzetdinova, “Magnetic properties of two-dimensional random systems of Ising dipoles,” J. Magn. Magn. Mater. 268, 237–250 (2004).CrossRef E. Z. Meilikhov and R. M. Farzetdinova, “Magnetic properties of two-dimensional random systems of Ising dipoles,” J. Magn. Magn. Mater. 268, 237–250 (2004).CrossRef
3.
go back to reference Yu. P. Ivanov, A. I. Il’in, E. V. Pustovalov, and L. A. Chebotkevich, “Influence of induced anisotropy on the processes of magnetization reversal of cobalt circular nanodots,” Phys. Solid State 52, 1694–1700 (2010).CrossRef Yu. P. Ivanov, A. I. Il’in, E. V. Pustovalov, and L. A. Chebotkevich, “Influence of induced anisotropy on the processes of magnetization reversal of cobalt circular nanodots,” Phys. Solid State 52, 1694–1700 (2010).CrossRef
4.
go back to reference V. A. Kosobukin and B. B. Krichevtsov, “Local field effects in magneto-optics of two-dimensional arrays of ferromagnetic nanoparticles,” Phys. Solid State 52, 813–820 (2010).CrossRef V. A. Kosobukin and B. B. Krichevtsov, “Local field effects in magneto-optics of two-dimensional arrays of ferromagnetic nanoparticles,” Phys. Solid State 52, 813–820 (2010).CrossRef
5.
go back to reference P. V. Bondarenko, A. Yu. Galkin, and B. A. Ivanov, “Phase diagram of a two-dimensional square lattice of magnetic particles with perpendicular anisotropy,” J. Exp. Theor. Phys. 139, 986–1003 (2011).CrossRef P. V. Bondarenko, A. Yu. Galkin, and B. A. Ivanov, “Phase diagram of a two-dimensional square lattice of magnetic particles with perpendicular anisotropy,” J. Exp. Theor. Phys. 139, 986–1003 (2011).CrossRef
6.
go back to reference A. A. Fraerman, “Magnetic states and transport properties of ferromagnetic nanostructures,” 55, 1255–1260 (2012). A. A. Fraerman, “Magnetic states and transport properties of ferromagnetic nanostructures,” 55, 1255–1260 (2012).
7.
go back to reference S. A. Dzian and B. A. Ivanov, “Dynamics and stability of a linear cluster of spherical magnetic nanoparticles,” J. Exp. Theor. Phys. 115, 854–865 (2012).CrossRef S. A. Dzian and B. A. Ivanov, “Dynamics and stability of a linear cluster of spherical magnetic nanoparticles,” J. Exp. Theor. Phys. 115, 854–865 (2012).CrossRef
8.
go back to reference S. A. Gudoshnikov, B. Ya. Liubimov, A. V. Popova, and N. A. Usov, “The influence of a demagnetizing field on hysteresis losses in a dense assembly of superparamagnetic nanoparticles,” J. Magn. Magn. Mater. 324, 3690–3694 (2012).CrossRef S. A. Gudoshnikov, B. Ya. Liubimov, A. V. Popova, and N. A. Usov, “The influence of a demagnetizing field on hysteresis losses in a dense assembly of superparamagnetic nanoparticles,” J. Magn. Magn. Mater. 324, 3690–3694 (2012).CrossRef
9.
go back to reference T. Kiseleva, S. Zholudev, A. Novakova, and T. Grigoryeva, “The enhanced magnetodeformational effect in Galfenol/polyurethane nanocomposites by the arrangement of particle chains,” Compos. Struct. 138, 12–16 (2016).CrossRef T. Kiseleva, S. Zholudev, A. Novakova, and T. Grigoryeva, “The enhanced magnetodeformational effect in Galfenol/polyurethane nanocomposites by the arrangement of particle chains,” Compos. Struct. 138, 12–16 (2016).CrossRef
10.
go back to reference M. F. Hansen, P. E. Jönsson, P. Nordblad, and P. Svedlindh, “Critical dynamics of an interacting magnetic nanoparticle system,” J. Phys.: Condens. Matter 14, 4901–4914 (2002). M. F. Hansen, P. E. Jönsson, P. Nordblad, and P. Svedlindh, “Critical dynamics of an interacting magnetic nanoparticle system,” J. Phys.: Condens. Matter 14, 4901–4914 (2002).
11.
go back to reference A. M. Shutyi and D. I. Sementsov, “Dynamics of the magnetic moment of an anisotropic nanoparticle and a plane lattice in an alternating field,” Phys. Solid State 60, 2471–2480 (2018).CrossRef A. M. Shutyi and D. I. Sementsov, “Dynamics of the magnetic moment of an anisotropic nanoparticle and a plane lattice in an alternating field,” Phys. Solid State 60, 2471–2480 (2018).CrossRef
12.
go back to reference A. M. Shutyi and D. I. Sementsov, “Vortex structures in planar lattices of magnetic dipoles in the presence of exchange coupling,” JETP Lett. 99, 695–701 (2014).CrossRef A. M. Shutyi and D. I. Sementsov, “Vortex structures in planar lattices of magnetic dipoles in the presence of exchange coupling,” JETP Lett. 99, 695–701 (2014).CrossRef
13.
go back to reference A. M. Shutyi, S. V. Eliseeva, and D. I. Sementsov, “Equilibrium state of planar arrays of magnetic dipoles in the presence of exchange interaction,” Phys. Rev. B 91, 024421 (2015).CrossRef A. M. Shutyi, S. V. Eliseeva, and D. I. Sementsov, “Equilibrium state of planar arrays of magnetic dipoles in the presence of exchange interaction,” Phys. Rev. B 91, 024421 (2015).CrossRef
14.
go back to reference A. M. Shutyi and D. I. Sementsov, “Dynamics of the magnetic moments for chain of dipoles in domain wall,” J. Magn. Magn. Mater. 401, 1033–1038 (2016).CrossRef A. M. Shutyi and D. I. Sementsov, “Dynamics of the magnetic moments for chain of dipoles in domain wall,” J. Magn. Magn. Mater. 401, 1033–1038 (2016).CrossRef
15.
go back to reference N. Eibagi, J. J. Kan, F. E. Spada, and E. E. Fullerton, “Role of dipolar interactions on the thermal stability of high-density bit-patterned media,” IEEE Magn. Lett. 3, 4500204 (2012).CrossRef N. Eibagi, J. J. Kan, F. E. Spada, and E. E. Fullerton, “Role of dipolar interactions on the thermal stability of high-density bit-patterned media,” IEEE Magn. Lett. 3, 4500204 (2012).CrossRef
16.
go back to reference E. Z. Meilikhov and R. M. Farzetdinova, “Maximum magnetic recording density and switching field distribution,” Phys. Solid State 56, 2408–2417 (2014).CrossRef E. Z. Meilikhov and R. M. Farzetdinova, “Maximum magnetic recording density and switching field distribution,” Phys. Solid State 56, 2408–2417 (2014).CrossRef
17.
go back to reference H. W. Schumacher, C. Chappert, P. Crozat, R. C. Sousa, P. P. Freitas, J. Miltat, J. Fassbender, and B. Hillebrands, “Phase coherent precessional magnetization in microscopic spin valve elements,” Phys. Rev. Lett. 90, 017201 (2003).CrossRef H. W. Schumacher, C. Chappert, P. Crozat, R. C. Sousa, P. P. Freitas, J. Miltat, J. Fassbender, and B. Hillebrands, “Phase coherent precessional magnetization in microscopic spin valve elements,” Phys. Rev. Lett. 90, 017201 (2003).CrossRef
18.
go back to reference H. W. Schumacher, C. Chappert, R. C. Sousa, P. P. Freitas, and J. Miltat, “Quasiballistic magnetization reversal,” Phys. Rev. Lett. 90, 017204 (2003).CrossRef H. W. Schumacher, C. Chappert, R. C. Sousa, P. P. Freitas, and J. Miltat, “Quasiballistic magnetization reversal,” Phys. Rev. Lett. 90, 017204 (2003).CrossRef
19.
go back to reference A. V. Kimel, B. A. Ivanov, R. V. Pisarev, P. A. Usachev, A. Kirilyuk, and Th. Rasing, “Inertia-driven spin switching in antiferromagnets,’ Nat. Phys. 5, 727–731 (2009).CrossRef A. V. Kimel, B. A. Ivanov, R. V. Pisarev, P. A. Usachev, A. Kirilyuk, and Th. Rasing, “Inertia-driven spin switching in antiferromagnets,’ Nat. Phys. 5, 727–731 (2009).CrossRef
20.
go back to reference S. Takuya, C. Sung-Jin, I. Ryugo, T. Shimura, K. Kuroda, H. Ueda, Y. Ueda, B. A. Ivanov, F. Nori, and M. Fiebig, “Spin oscillations in antiferromagnetic NiO triggered by circularly polarized light,” Phys. Rev. Lett. 105, 077402 (2010).CrossRef S. Takuya, C. Sung-Jin, I. Ryugo, T. Shimura, K. Kuroda, H. Ueda, Y. Ueda, B. A. Ivanov, F. Nori, and M. Fiebig, “Spin oscillations in antiferromagnetic NiO triggered by circularly polarized light,” Phys. Rev. Lett. 105, 077402 (2010).CrossRef
21.
go back to reference A. Yu. Galkin and B. A. Ivanov, “Dynamics of antiferromagnets exposed to ultrashort magnetic field pulses,” JETP Lett. 88, 249–253 (2008).CrossRef A. Yu. Galkin and B. A. Ivanov, “Dynamics of antiferromagnets exposed to ultrashort magnetic field pulses,” JETP Lett. 88, 249–253 (2008).CrossRef
22.
go back to reference Yu. I. Dzhezherya, V. P. Yurchuk, K. O. Demishev, and V. N. Korenivskii, “Remagnetization of synthetic antiferromagnetic cells by a magnetic field pulse,” J. Exp. Theor. Phys. 117, 1059–1065 (2013).CrossRef Yu. I. Dzhezherya, V. P. Yurchuk, K. O. Demishev, and V. N. Korenivskii, “Remagnetization of synthetic antiferromagnetic cells by a magnetic field pulse,” J. Exp. Theor. Phys. 117, 1059–1065 (2013).CrossRef
23.
go back to reference A. Sukhov and J. Berakdar, “Steering magnetization dynamics of nanoparticles with ultrashort pulses,” Phys. Rev. B 79, 134433 (2009).CrossRef A. Sukhov and J. Berakdar, “Steering magnetization dynamics of nanoparticles with ultrashort pulses,” Phys. Rev. B 79, 134433 (2009).CrossRef
24.
go back to reference V. V. Randoshkin, A. M. Saletskii, N. N. Usmanov, and D. B. Chopornyak, “Influence of an in-plane magnetic field on pulsed magnetization reversal of single-crystal (Bi,Lu)3(Fe,Ga)5O12 films with (210) orientation,” Phys. Solid State 46, 474–478 (2004).CrossRef V. V. Randoshkin, A. M. Saletskii, N. N. Usmanov, and D. B. Chopornyak, “Influence of an in-plane magnetic field on pulsed magnetization reversal of single-crystal (Bi,Lu)3(Fe,Ga)5O12 films with (210) orientation,” Phys. Solid State 46, 474–478 (2004).CrossRef
25.
go back to reference E. I. Il’yashenko, O. S. Kolotov, A. V. Matyunin, O. A. Mironets, and V. A. Pogozhev, “Effect of biaxial anisotropy in iron garnet films with in-plane magnetization on the shape of pulsed magnetization reversal curves,” Tech. Phys. 51, 1534–1536 (2006).CrossRef E. I. Il’yashenko, O. S. Kolotov, A. V. Matyunin, O. A. Mironets, and V. A. Pogozhev, “Effect of biaxial anisotropy in iron garnet films with in-plane magnetization on the shape of pulsed magnetization reversal curves,” Tech. Phys. 51, 1534–1536 (2006).CrossRef
26.
go back to reference D. A. Balaev, A. A. Krasikov, D. A. Velikanov, S. I. Popkov, N. V. Dubynin, S. V. Stolyar, V. P. Ladygina, and R. N. Yaroslavtsev, “Pulsed field-induced magnetization switching in antiferromagnetic ferrihydrite nanoparticles,” Phys. Solid State 60, 1973–1978 (2018).CrossRef D. A. Balaev, A. A. Krasikov, D. A. Velikanov, S. I. Popkov, N. V. Dubynin, S. V. Stolyar, V. P. Ladygina, and R. N. Yaroslavtsev, “Pulsed field-induced magnetization switching in antiferromagnetic ferrihydrite nanoparticles,” Phys. Solid State 60, 1973–1978 (2018).CrossRef
27.
go back to reference A. M. Shutyi and D. I. Sementsov, “Response of magnetic nanoparticles lattice to Gaussian pulse of magnetic field,” Phys. Met. Metallogr. 120, 238–246 (2019).CrossRef A. M. Shutyi and D. I. Sementsov, “Response of magnetic nanoparticles lattice to Gaussian pulse of magnetic field,” Phys. Met. Metallogr. 120, 238–246 (2019).CrossRef
28.
go back to reference Yu. I. Dzhezherya, K. O. Demishev, and V. N. Korenivskii, “Kapitza problem for the magnetic moments of synthetic antiferromagnetic systems,” J. Exp. Theor. Phys. 115, 284–288 (2012).CrossRef Yu. I. Dzhezherya, K. O. Demishev, and V. N. Korenivskii, “Kapitza problem for the magnetic moments of synthetic antiferromagnetic systems,” J. Exp. Theor. Phys. 115, 284–288 (2012).CrossRef
29.
go back to reference A. M. Shutyi and D. I. Sementsov, “Response of the magnetic moment of a nanoparticle to an applied pulse,” JETP Lett. 108, 740–747 (2018).CrossRef A. M. Shutyi and D. I. Sementsov, “Response of the magnetic moment of a nanoparticle to an applied pulse,” JETP Lett. 108, 740–747 (2018).CrossRef
30.
go back to reference A. G. Gurevitch and G. A. Melkov, Magnetic Oscillations and Waves (Nauka, Moscow, 1994) [in Russian]. A. G. Gurevitch and G. A. Melkov, Magnetic Oscillations and Waves (Nauka, Moscow, 1994) [in Russian].
Metadata
Title
Pulsed Magnetization Reversal of an Antiferromagnetic Dipole Cell
Authors
A. M. Shutyi
D. I. Sementsov
Publication date
01-03-2020
Publisher
Pleiades Publishing
Published in
Physics of Metals and Metallography / Issue 3/2020
Print ISSN: 0031-918X
Electronic ISSN: 1555-6190
DOI
https://doi.org/10.1134/S0031918X20010147

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