Strongly frustrated 2D magnetism in a 3D hexagonal perovskite
Abstract
Exotic quantum phenomena are often found to occur in spin systems that exhibit low-dimensional magnetism. By combining nuclear magnetic resonance, neutron scattering, and muon-spin spectroscopy (SR) techniques, we report a rare instance of strongly frustrated two-dimensional (2D) magnetism in a three-dimensional (3D) hexagonal perovskite. Here, BaLaMnTeO, a triangular-lattice magnet, is shown to undergo a magnetic transition at 4.4 K, below which the manganese moments form a 120 AFM order within the -plane, while staying disordered along the -axis. This exotic ground state, which exhibits ideal 2D magnetism, is highly consistent with the persistently strong spin fluctuations and the large internal field distributions revealed by zero-field SR. Further, the 2D magnetism also leads to a significant frustration, much larger than that of most known magnetically-ordered frustrated systems. Our work on BaLaMnTeO not only challenges the interpretations of magnetic order in other 3D hexagonal perovskites, but it also provides insight into how the dimensionality affects the exotic magnetic states.
Cite
@article{arxiv.2607.00532,
title = {Strongly frustrated 2D magnetism in a 3D hexagonal perovskite},
author = {Bocheng Yu and Otkur Omar and Songtai Lv and Long Ma and Zhengcai Xia and Jing Meng and Yanran Yang and Jie Ma and Yang Xu and Qingfeng Zhan and Vladimir Yu. Pomjakushin and Haiyuan Zou and Shang Gao and Toni Shiroka and Tian Shang},
journal= {arXiv preprint arXiv:2607.00532},
year = {2026}
}
Comments
10 pages, 6 figures