4.3 Article

Magnetization Process of Spin-1/2 Heisenberg Antiferromagnets on a Layered Triangular Lattice

Journal

JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN
Volume 85, Issue 2, Pages -

Publisher

PHYSICAL SOC JAPAN
DOI: 10.7566/JPSJ.85.024706

Keywords

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Funding

  1. JSPS KAKENHI [25800228, 25220711, 26800200]
  2. Grants-in-Aid for Scientific Research [26800200, 25800228] Funding Source: KAKEN

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We study the magnetization process of the spin-1/2 antiferromagnetic Heisenberg model on a layered triangular lattice by means of a numerical cluster mean-field method with a scaling scheme (CMF+S). It has been known that antiferromagnetic spins on a two-dimensional (2D) triangular lattice with quantum fluctuations exhibit a one-third magnetization plateau in the magnetization curve under magnetic field. We demonstrate that the CMF+S quantitatively reproduces the magnetization curve including the stabilization of the plateau. We also discuss the effects of a finite interlayer coupling, which is unavoidable in real quasi-2D materials. It has been recently argued for a model of the layered-triangular-lattice compound Ba3CoSb2O9 that such interlayer coupling can induce an additional first-order transition at a strong field. We present the detailed CMF+S results for the magnetization and susceptibility curves of the fundamental Heisenberg Hamiltonian in the presence of magnetic field and weak antiferromagnetic interlayer coupling. The extra first-order transition appears as a quite small jump in the magnetization curve and a divergence in the susceptibility at a strong magnetic field similar to 0.712 of the saturation field.

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