Huai Xudong, Acheampong Emmanuel, Delles Erich, Winiarski Michał J, Sorolla Maurice, Nassar Lila, Liang Mingli, Ramette Caleb, Ji Huiwen, Scheie Allen, Calder Stuart, Mourigal Martin, Tran Thao T
Department of Chemistry, Clemson University, Clemson, SC, 29634, USA.
Applied Physics and Mathematics and Advanced Materials Center, Gdansk University of Technology, Gdansk, 80-233, Poland.
Adv Mater. 2024 Jun;36(24):e2313763. doi: 10.1002/adma.202313763. Epub 2024 Mar 27.
Noncentrosymmetric triangular magnets offer a unique platform for realizing strong quantum fluctuations. However, designing these quantum materials remains an open challenge attributable to a knowledge gap in the tunability of competing exchange interactions at the atomic level. Here, a new noncentrosymmetric triangular S = 3/2 magnet CaMnTeO is created based on careful chemical and physical considerations. The model material displays competing magnetic interactions and features nonlinear optical responses with the capability of generating coherent photons. The incommensurate magnetic ground state of CaMnTeO with an unusually large spin rotation angle of 127°(1) indicates that the anisotropic interlayer exchange is strong and competing with the isotropic interlayer Heisenberg interaction. The moment of 1.39(1) µB, extracted from low-temperature heat capacity and neutron diffraction measurements, is only 46% of the expected value of the static moment 3 µB. This reduction indicates the presence of strong quantum fluctuations in the half-integer spin S = 3/2 CaMnTeO magnet, which is rare. By comparing the spin-polarized band structure, chemical bonding, and physical properties of AMnTeO (A = Ca, Sr, Pb), how quantum-chemical interpretation can illuminate insights into the fundamentals of magnetic exchange interactions, providing a powerful tool for modulating spin dynamics with atomically precise control is demonstrated.
非中心对称三角磁体为实现强量子涨落提供了一个独特的平台。然而,由于在原子水平上竞争交换相互作用的可调性方面存在知识空白,设计这些量子材料仍然是一个悬而未决的挑战。在此,基于仔细的化学和物理考量,创建了一种新型非中心对称三角 S = 3/2 磁体 CaMnTeO。该模型材料展现出竞争磁相互作用,并具有产生相干光子能力的非线性光学响应。CaMnTeO 的非公度磁基态具有异常大的 127°(1) 自旋旋转角,这表明各向异性层间交换很强,并与各向同性层间海森堡相互作用相互竞争。从低温热容和中子衍射测量中提取的 1.39(1) µB 的磁矩,仅为静态磁矩 3 µB 预期值的 46%。这种降低表明在半整数自旋 S = 3/2 的 CaMnTeO 磁体中存在强量子涨落,这是很罕见的。通过比较 AMnTeO(A = Ca、Sr、Pb)的自旋极化能带结构、化学键和物理性质,证明了量子化学解释如何能够阐明对磁交换相互作用基本原理的见解,为通过原子精确控制来调制自旋动力学提供了一个强大的工具。