Home / Publications / Tuning the morphology and magnetic properties of single-domain SrFe8Al4O19 particles prepared by a citrate auto-combustion method

Tuning the morphology and magnetic properties of single-domain SrFe8Al4O19 particles prepared by a citrate auto-combustion method

Anastasia Evgenievna Sleptsova 1
Anastasia Evgenievna Sleptsova
Evgeny Andreevich Gorbachev 1, 3
Evgeny Andreevich Gorbachev
Ekaterina Sergeevna Kozlyakova 4
Ekaterina Sergeevna Kozlyakova
Chen Xinming 3
Chen Xinming
Alexander Vital'evich Vasiliev
Anatoly Semionovich Prokhorov 2, 5
Anatoly Semionovich Prokhorov
Pavel Evgen'evich Kazin 1
Pavel Evgen'evich Kazin
Lev Artemovich Trusov 1, 3
Lev Artemovich Trusov
Published 2021-03-03
CommunicationVolume 31, Issue 2, 221-223
25
Share
Cite this
GOST
 | 
Cite this
GOST Copy
Sleptsova A. E. et al. Tuning the morphology and magnetic properties of single-domain SrFe8Al4O19 particles prepared by a citrate auto-combustion method // Mendeleev Communications. 2021. Vol. 31. No. 2. pp. 221-223.
GOST all authors (up to 50) Copy
Sleptsova A. E., Alyabyeva L. N., Gorbachev E. A., Kozlyakova E. S., Karpov M. A., Xinming C., Vasiliev A. V., Gorshunov B. P., Prokhorov A. S., Kazin P. E., Trusov L. A. Tuning the morphology and magnetic properties of single-domain SrFe8Al4O19 particles prepared by a citrate auto-combustion method // Mendeleev Communications. 2021. Vol. 31. No. 2. pp. 221-223.
RIS
 | 
Cite this
RIS Copy
TY - JOUR
DO - 10.1016/j.mencom.2021.03.025
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2021.03.025
TI - Tuning the morphology and magnetic properties of single-domain SrFe8Al4O19 particles prepared by a citrate auto-combustion method
T2 - Mendeleev Communications
AU - Sleptsova, Anastasia Evgenievna
AU - Alyabyeva, Liudmila Nikolaevna
AU - Gorbachev, Evgeny Andreevich
AU - Kozlyakova, Ekaterina Sergeevna
AU - Karpov, Maxim A
AU - Xinming, Chen
AU - Vasiliev, Alexander Vital'evich
AU - Gorshunov, Boris Petrovich
AU - Prokhorov, Anatoly Semionovich
AU - Kazin, Pavel Evgen'evich
AU - Trusov, Lev Artemovich
PY - 2021
DA - 2021/03/03
PB - Mendeleev Communications
SP - 221-223
IS - 2
VL - 31
ER -
BibTex
 | 
Cite this
BibTex (up to 50 authors) Copy
@article{2021_Sleptsova,
author = {Anastasia Evgenievna Sleptsova and Liudmila Nikolaevna Alyabyeva and Evgeny Andreevich Gorbachev and Ekaterina Sergeevna Kozlyakova and Maxim A Karpov and Chen Xinming and Alexander Vital'evich Vasiliev and Boris Petrovich Gorshunov and Anatoly Semionovich Prokhorov and Pavel Evgen'evich Kazin and Lev Artemovich Trusov},
title = {Tuning the morphology and magnetic properties of single-domain SrFe8Al4O19 particles prepared by a citrate auto-combustion method},
journal = {Mendeleev Communications},
year = {2021},
volume = {31},
publisher = {Mendeleev Communications},
month = {Mar},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2021.03.025},
number = {2},
pages = {221--223},
doi = {10.1016/j.mencom.2021.03.025}
}
MLA
Cite this
MLA Copy
Sleptsova, Anastasia Evgenievna, et al. “Tuning the morphology and magnetic properties of single-domain SrFe8Al4O19 particles prepared by a citrate auto-combustion method.” Mendeleev Communications, vol. 31, no. 2, Mar. 2021, pp. 221-223. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2021.03.025.

Keywords

ferrites
ferromagnetic resonance
hexaferrites
high coercivity
magnetic materials
permanent magnets

Abstract

Single-domain particles of SrFe8Al4O19 were prepared by thermal treatment of porous products of citrate–nitrate autocombustion at 1200°C, and the effect of synthesis time on the particle morphology and magnetic properties was estimated. The procedure allows one to obtain SrFe8Al4O19 particles with mean diameters of 100–460nm and coercivity ranges from 14.5 to 18.4kOe, while ferromagnetic resonance frequencies vary from 149 to 164GHz.

References

1.
10.1016/j.mencom.2021.03.025_bib0005
Kojima
1982
3.
Development of advanced barium ferrite tape media
Shimizu O., Oyanagi M., Morooka A., Mori M., Kurihashi Y., Tada T., Suzuki H., Harasawa T.
Journal of Magnetism and Magnetic Materials, 2016
4.
Formation of hexagonal, platelike Ba-ferrite particles with low temperature dependence of coercivity
5.
Controlled way to prepare quasi-1D nanostructures with complex chemical composition in porous anodic alumina
Lukatskaya M.R., Trusov L.A., Eliseev A.A., Lukashin A.V., Jansen M., Kazin P.E., Napolskii K.S.
Chemical Communications, 2011
6.
Stable colloidal solutions of strontium hexaferrite hard magnetic nanoparticles
Trusov L.A., Vasiliev A.V., Lukatskaya M.R., Zaytsev D.D., Jansen M., Kazin P.E.
Chemical Communications, 2014
7.
Rotational dynamics of colloidal hexaferrite nanoplates
Eliseev A.A., Eliseev A.A., Trusov L.A., Chumakov A.P., Boesecke P., Anokhin E.O., Vasiliev A.V., Sleptsova A.E., Gorbachev E.A., Korolev V.V., Kazin P.E.
Applied Physics Letters, 2018
8.
Gorbachev E.A., Trusov L.A., Sleptsova A.E., Anokhin E.O., Zaitsev D.D., Vasiliev A.V., Eliseev A.A., Kazin P.E.
Mendeleev Communications, 2018
10.
Ba-hexaferrite films for next generation microwave devices (invited)
Harris V.G., Chen Z., Chen Y., Yoon S., Sakai T., Gieler A., Yang A., He Y., Ziemer K.S., Sun N.X., Vittoria C.
Journal of Applied Physics, 2006
11.
Recent advances in processing and applications of microwave ferrites
Harris V.G., Geiler A., Chen Y., Yoon S.D., Wu M., Yang A., Chen Z., He P., Parimi P.V., Zuo X., Patton C.E., Abe M., Acher O., Vittoria C.
Journal of Magnetism and Magnetic Materials, 2009
12.
Oriented barium hexaferrite thick films with narrow ferromagnetic resonance linewidth
Chen Y., Sakai T., Chen T., Yoon S.D., Geiler A.L., Vittoria C., Harris V.G.
Applied Physics Letters, 2006
13.
Hexaferrite materials displaying ultra-high coercivity and sub-terahertz ferromagnetic resonance frequencies
Gorbachev E.A., Trusov L.A., Sleptsova A.E., Kozlyakova E.S., Alyabyeva L.N., Yegiyan S.R., Prokhorov A.S., Lebedev V.A., Roslyakov I.V., Vasiliev A.V., Kazin P.E.
Materials Today, 2020
14.
Ca-Al double-substituted strontium hexaferrites with giant coercivity.
Trusov L.A., Gorbachev E.A., Lebedev V.A., Sleptsova A.E., Roslyakov I.V., Kozlyakova E.S., Vasiliev A.V., Dinnebier R.E., Jansen M., Kazin P.E.
Chemical Communications, 2018
15.
Synthesis and magnetic properties of SrFe12-x -yAlxCoyO19 nanocomposites prepared via autocombustion technique
Dahal J.N., Wang L., Mishra S.R., Nguyen V.V., Liu J.P.
Journal of Alloys and Compounds, 2014
16.
10.1016/j.mencom.2021.03.025_bib0080
Stoner
Philos. Trans. R. Soc., A, 1948
17.
Formation of submicron-sized SrFe12−xAlxO19 with very high coercivity
Kazin P.E., Trusov L.A., Zaitsev D.D., Tretyakov Y.D., Jansen M.
Journal of Magnetism and Magnetic Materials, 2008
18.
Physical and magnetic properties of highly aluminum doped strontium ferrite nanoparticles prepared by auto-combustion route
Luo H., Rai B.K., Mishra S.R., Nguyen V.V., Liu J.P.
Journal of Magnetism and Magnetic Materials, 2012
19.
X-ray profile analysis of cation distribution in SrAlxFe12−xO19 solid solution
Sandiumenge F., Gali S., Rodriguez J.
Materials Research Bulletin, 1988
20.
Theory of the Single Ion Magnetocrystalline Anisotropy of 3d Ions
Xu Y., Yang G., Chu D., Zhai H.
Physica Status Solidi (B): Basic Research, 1990