Field-Induced Magnetic Transitions And Strong Anisotropy In Alpha-Cov2o6 Single Crystal

JOURNAL OF PHYSICS-CONDENSED MATTER(2019)

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Abstract
The Ising-like antiferromagnet alpha-CoV2O6 has received considerable interests because of stabilized 1/3 magnetization plateau around 5 K under magnetic field applied along magnetic easy c-axis. In this work, this magnetization plateau was studied by varying temperature or rotating magnetic field. As temperature decreased, this stabilized plateau collapsed, and additional magnetic transitions were observed. As a result, a rich magnetic phase diagram was constructed and extended to temperature lower than previously reported. When magnetic field moved from the c to b (or a) axis, the magnetization plateau developed with field directions and vanished finally when the field was restricted in the ab plane. An impressive observation is that this 1/3-plateau can be stabilized and remain robust even when magnetic field deviated from the c axis, accompanied by the evolutions of the magnetic moments and the critical transition fields. We suppose that the origins of these temperature and angular dependences of the 1/3 magnetization plateau are related to strong spin-orbital coupling. Indeed, electron spin resonance (ESR) measurement gives large Lande factor of 8.9, evidencing that there exists strong spin-orbital coupling.
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Key words
magnetization plateau, angular dependence, strong anisotropy
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