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Origin of Ising magnetism in Ca3Co2O6 unveiled by orbital imaging.


ABSTRACT: The one-dimensional cobaltate Ca[Formula: see text]Co[Formula: see text]O[Formula: see text] is an intriguing material having an unconventional magnetic structure, displaying quantum tunneling phenomena in its magnetization. Using a newly developed experimental method, [Formula: see text]-core-level non-resonant inelastic x-ray scattering ([Formula: see text]-NIXS), we were able to image the atomic Co [Formula: see text] orbital that is responsible for the Ising magnetism in this system. We can directly observe that corrections to the commonly accepted ideal prismatic trigonal crystal field scheme occur in Ca[Formula: see text]Co[Formula: see text]O[Formula: see text], and it is the complex [Formula: see text] orbital occupied by the sixth electron at the high-spin Co[Formula: see text] ([Formula: see text]) sites that generates the Ising-like behavior. The ability to directly relate the orbital occupation with the local crystal structure is essential to model the magnetic properties of this system.

SUBMITTER: Leedahl B 

PROVIDER: S-EPMC6884600 | biostudies-literature | 2019 Nov

REPOSITORIES: biostudies-literature

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Origin of Ising magnetism in Ca<sub>3</sub>Co<sub>2</sub>O<sub>6</sub> unveiled by orbital imaging.

Leedahl Brett B   Sundermann Martin M   Amorese Andrea A   Severing Andrea A   Gretarsson Hlynur H   Zhang Lunyong L   Komarek Alexander C AC   Maignan Antoine A   Haverkort Maurits W MW   Tjeng Liu Hao LH  

Nature communications 20191129 1


The one-dimensional cobaltate Ca[Formula: see text]Co[Formula: see text]O[Formula: see text] is an intriguing material having an unconventional magnetic structure, displaying quantum tunneling phenomena in its magnetization. Using a newly developed experimental method, [Formula: see text]-core-level non-resonant inelastic x-ray scattering ([Formula: see text]-NIXS), we were able to image the atomic Co [Formula: see text] orbital that is responsible for the Ising magnetism in this system. We can  ...[more]

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