Specific features of magnetic order in a multiferroic compound CuCrO2 determined using NMR and NQR data for 63, 65Cu nuclei

Author:

Smol’nikov A. G.,Ogloblichev V. V.,Verkhovskii S. V.,Mikhalev K. N.,Yakubovskii A. Yu.,Furukawa Y.,Piskunov Yu. V.,Sadykov A. F.,Barilo S. N.,Shiryaev S. V.

Publisher

Pleiades Publishing Ltd

Subject

Materials Chemistry,Condensed Matter Physics

Reference22 articles.

1. M. Poienar, F. Damay, C. Martin, V. Hardy, A. Maignan, and G. Andre, “Structural and magnetic properties of CuCr1–x MgxO2 by neutron powder diffraction,” Phys. Rev. B: Condens. Matter Mater. Phys. 79, 014412 (2009).

2. H. Kadowaki, H. Kikuchi, and Y. Ajiro, “Neutron powder diffraction study of the two-dimensional triangular lattice antiferromagnet CuCrO2,” J. Phys.: Condens. Matter 2, 4485–4493 (1990).

3. M. Frontzek, G. Ehlers, A. Podlesnyak, H. Cao, M. Matsuda, O. Zaharko, N. Aliouane, S. Barilo, and S. V. Shiryaev, “Magnetic structure of CuCrO2: A single crystal neutron diffraction study,” J. Phys.: Condens. Matter 24, 016004 (2012).

4. S. I. Sek, Y. Onose, and Y. Tokura, “Spin-driven ferroelectricity in triangular lattice antiferromagnets ACrO2 (A = Cu, Ag, Li, or Na),” Phys. Rev. Lett. 101, 067204 (2008).

5. K. Kimura, H. Nakamura, K. Ohgushi, and T. Kimura, “Magnetoelectric control of spin-chiral ferroelectric domains in a triangular lattice antiferromagnet,” Phys. Rev. B: Condens. Matter Mater. Phys. 78, 140401 (2008).

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