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Magnetic properties of a linear dioxonickelate(II) ion imbedded in apatite-type strontium and barium phosphates

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Kazin P. E. et al. Magnetic properties of a linear dioxonickelate(II) ion imbedded in apatite-type strontium and barium phosphates // Mendeleev Communications. 2019. Vol. 29. No. 4. pp. 447-449.
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Kazin P. E., Zykin M. A., Trusov L. A., Vasiliev A. V. Magnetic properties of a linear dioxonickelate(II) ion imbedded in apatite-type strontium and barium phosphates // Mendeleev Communications. 2019. Vol. 29. No. 4. pp. 447-449.
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TY - JOUR
DO - 10.1016/j.mencom.2019.07.031
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.07.031
TI - Magnetic properties of a linear dioxonickelate(II) ion imbedded in apatite-type strontium and barium phosphates
T2 - Mendeleev Communications
AU - Kazin, Pavel Evgen'evich
AU - Zykin, Mikhail Alexandrovich
AU - Trusov, Lev Artemovich
AU - Vasiliev, Alexander Vital'evich
PY - 2019
DA - 2019/07/01
PB - Mendeleev Communications
SP - 447-449
IS - 4
VL - 29
ER -
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@article{2019_Kazin,
author = {Pavel Evgen'evich Kazin and Mikhail Alexandrovich Zykin and Lev Artemovich Trusov and Alexander Vital'evich Vasiliev},
title = {Magnetic properties of a linear dioxonickelate(II) ion imbedded in apatite-type strontium and barium phosphates},
journal = {Mendeleev Communications},
year = {2019},
volume = {29},
publisher = {Mendeleev Communications},
month = {Jul},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.07.031},
number = {4},
pages = {447--449},
doi = {10.1016/j.mencom.2019.07.031}
}
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Kazin, Pavel Evgen'evich, et al. “Magnetic properties of a linear dioxonickelate(II) ion imbedded in apatite-type strontium and barium phosphates.” Mendeleev Communications, vol. 29, no. 4, Jul. 2019, pp. 447-449. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.07.031.

Abstract

Strontium and barium hydroxyapatite phosphates doped with nickel oxide were prepared by a high-temperature solid state synthesis. The compounds contain a linear dioxonickelate(II) anion, which reveals strong easy-plain magnetic anisotropy with a zero-field splitting energy of 57cm−1.

References

1.
Apatite - An Adaptive Framework Structure
White T.
Reviews in Mineralogy and Geochemistry, 2005
3.
Crystal Structure and Properties of Strontium Phosphate Apatite with Oxocuprate Ions in Hexagonal Channels
Kazin P.E., Karpov A.S., Jansen M., Nuss J., Tretyakov Y.D.
Zeitschrift fur Anorganische und Allgemeine Chemie, 2003
5.
Incorporation of 3d-metal ions in the hexagonal channels of the Sr5(PO4)3OH apatite
Kazin P.E., Gazizova O.R., Karpov A.S., Jansen M., Tretyakov Y.D.
Solid State Sciences, 2007
6.
Unexpected Mechanism of Zn2+ Insertion in Calcium Phosphate Bioceramics
Gomes S., Nedelec J., Jallot E., Sheptyakov D., Renaudin G.
Chemistry of Materials, 2011
9.
http://www.ferro.com (Inorganic color pigments. Strontium phosphate violet).
11.
Cobalt-Based Single-Ion Magnets on an Apatite Lattice: Toward Patterned Arrays for Magnetic Memories.
Kazin P.E., Zykin M.A., Schnelle W., Zubavichus Y.V., Babeshkin K.A., Tafeenko V.A., Felser C., Jansen M.
Inorganic Chemistry, 2017
12.
A Co-based single-molecule magnet confined in a barium phosphate apatite matrix with a high energy barrier for magnetization relaxation.
Kazin P.E., Zykin M.A., Trusov L.A., Eliseev A.A., Magdysyuk O.V., Dinnebier R.E., Kremer R.K., Felser C., Jansen M.
Chemical Communications, 2017
13.
10.1016/j.mencom.2019.07.031_bib0065
Gatteschi
Molecular Nanomagnets, 2006
15.
Electrically driven nuclear spin resonance in single-molecule magnets
Thiele S., Balestro F., Ballou R., Klyatskaya S., Ruben M., Wernsdorfer W.
Science, 2014
16.
3d single-ion magnets
Craig G.A., Murrie M.
Chemical Society Reviews, 2015
18.
Zero-field splitting in metal complexes
Boča R.
Coordination Chemistry Reviews, 2004
21.
Slow magnetization dynamics in a series of two-coordinate iron(ii) complexes
Zadrozny J.M., Atanasov M., Bryan A.M., Lin C., Rekken B.D., Power P.P., Neese F., Long J.R.
Chemical Science, 2013
23.
10.1016/j.mencom.2019.07.031_bib0115
Wybourne
Spectroscopic Properties of Rare Earths, 1965
24.
Reduced Anionic Mn12 Molecules with Half-Integer Ground States as Single-Molecule Magnets
Aubin S.M., Sun Z., Pardi L., Krzystek J., Folting K., Brunel L., Rheingold A.L., Christou G., Hendrickson D.N.
Inorganic Chemistry, 1999