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  5. A four-coordinate cobalt(II) single-ion magnet with coercivity and a very high energy barrier

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Article
English
2016

A four-coordinate cobalt(II) single-ion magnet with coercivity and a very high energy barrier

0 Datasets

0 Files

English
2016
Nature Communications
Vol 7 (1)
DOI: 10.1038/ncomms10467

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Frank Neese
Frank Neese

Max Planck

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Yvonne Rechkemmer
Frauke D. Breitgoff
Margarethe Van Der Meer
+7 more

Abstract

Single-molecule magnets display magnetic bistability of molecular origin, which may one day be exploited in magnetic data storage devices. Recently it was realised that increasing the magnetic moment of polynuclear molecules does not automatically lead to a substantial increase in magnetic bistability. Attention has thus increasingly focussed on ions with large magnetic anisotropies, especially lanthanides. In spite of large effective energy barriers towards relaxation of the magnetic moment, this has so far not led to a big increase in magnetic bistability. Here we present a comprehensive study of a mononuclear, tetrahedrally coordinated cobalt(II) single-molecule magnet, which has a very high effective energy barrier and displays pronounced magnetic bistability. The combined experimental-theoretical approach enables an in-depth understanding of the origin of these favourable properties, which are shown to arise from a strong ligand field in combination with axial distortion. Our findings allow formulation of clear design principles for improved materials.

How to cite this publication

Yvonne Rechkemmer, Frauke D. Breitgoff, Margarethe Van Der Meer, Mihail Atanasov, Michael Hakl, M. Orlita, Petr Neugebauer, Frank Neese, Biprajit Sarkar, Joris van Slageren (2016). A four-coordinate cobalt(II) single-ion magnet with coercivity and a very high energy barrier. Nature Communications, 7(1), DOI: 10.1038/ncomms10467.

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Publication Details

Type

Article

Year

2016

Authors

10

Datasets

0

Total Files

0

Language

English

Journal

Nature Communications

DOI

10.1038/ncomms10467

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