Magnetism and Peierls distortion in Dirac semimetal CaMnBi$_2$
Aashish Sapkota, Niraj Aryal, Xiao Hu, Masaaki Matsuda, Yan Wu, Guangyong Xu, John M. Wilde, Andreas Kreyssig, Paul C. Canfield, Cedomir Petrovic, John M. Tranquada, Igor A. Zaliznyak

TL;DR
This study reveals a coupled structural and magnetic transition in CaMnBi$_2$ driven by a Peierls-type instability, leading to a bond-order-wave modulation of Bi-Bi bonds, without spin canting or weak ferromagnetism.
Contribution
It demonstrates that the anomalies in CaMnBi$_2$ are due to a Peierls-like lattice distortion, not spin canting, providing new insight into its electronic and magnetic properties.
Findings
No measurable Mn spin canting detected.
Transition is a second-order symmetry-lowering transition.
Bond-order-wave modulation of Bi-Bi bonds confirmed.
Abstract
Dirac semimetals of the form Mn ( alkaline-earth or divalent rare earth; Bi, Sb) host conducting square-net Dirac-electron layers of atoms interleaved with antiferromagnetic Mn layers. In these materials, canted antiferromagnetism can break time-reversal symmetry (TRS) and produce a Weyl semimetallic state. CaMnBi was proposed to realize this behavior below K, where anomalies in resistivity and optical conductivity were reported. We investigate single-crystal CaMnBi using polarized and unpolarized neutron diffraction, x-ray diffraction, and density functional theory (DFT) calculations to elucidate the underlying crystal and magnetic structures. The results show that the observed anomalies do not originate from spin canting or weak ferromagnetism; no measurable uniform Mn spin canting is detected. Instead, CaMnBi undergoes a coupled…
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Taxonomy
TopicsTopological Materials and Phenomena · Chemical and Physical Properties of Materials · Metallurgical and Alloy Processes
