arXiv · 1608.08206
Frustrated magnetism and bicollinear antiferromagnetic order in FeTe
Abstract
Iron chalcogenides display a rich variety of electronic orders in their phase diagram. A particularly enigmatic case is FeTe, a metal which possesses co-existing hole and electron Fermi surfaces as in the iron pnictides but has a distinct ($\pi$/2,$\pi/2$) bicollinear antiferromagnetic order in the Fe square lattice. While local-moment physics has been recognized as essential for understanding the electronic order, it has been a long-standing challenge to understand how the bicollinear antiferromagnetic ground state emerges in a proper quantum spin model. We show here that a bilinear-biquadratic spin-$1$ model on a square lattice with nonzero ring-exchange interactions exhibits the bicollinear antiferromagnetic order over an extended parameter space in its phase diagram. Our work shows that frustrated magnetism in the quantum spin model provides a unified description of the electronic orders in the iron chalcogenides and iron pnictides.
Explore related subjects
Keep this discovery
Hsin-Hua Lai, Shou-Shu Gong, Wen-Jun Hu, Qimiao Si. 2016-08-29. Frustrated magnetism and bicollinear antiferromagnetic order in FeTe. https://arxiv.org/abs/1608.08206
Cite the original work for its findings. Save a collection to share your selection of sources.