Connolly E T, Wardell J, Boldrin D, Tang C C, Wills A S
Department of Chemistry, UCL, 20 Gordon St, London WC1H 0AJ, United Kingdom.
Diamond Light Source, Harwell Science and Innovation Campus, Didcot OX11 0DE, United Kingdom.
J Phys Condens Matter. 2024 Mar 7;36(22). doi: 10.1088/1361-648X/ad2aab.
The strong geometric frustration of the kagome antiferromagnets (KAFMs) can destabilise conventional magnetic order and lead to exotic electronic states, such as the quantum spin-liquid state observed in someS=12KAFM materials. However, the ground state of = 1 KAFM systems are less well understood. Spin nematic phases and valence bond solid ground states have been predicted to form but a paucity of experimental realisations restricts understanding. Here, the = 1 KAFM NHNiMoOHis presented, which has the 3-fold symmetry of the kagome lattice but significant site depletion, with∼64%site occupancy. Frustration and a competition between exchange interactions are evidenced through the suppression of order below the Weiss temperature|θW|and observation of ferromagnetic and antiferromagnetic characteristics in the magnetisation data. A semi spin glass ground state is predicted based on the ac-field frequency dependence of the magnetic transition and ferromagnetic signal.
Kagome反铁磁体(KAFMs)强烈的几何阻挫会破坏传统磁序,并导致奇异的电子态,比如在一些S=1/2的KAFM材料中观测到的量子自旋液体态。然而,对于S = 1的KAFM体系的基态,人们了解较少。自旋向列相和价键固体基态已被预测会形成,但实验实现的匮乏限制了相关理解。在此,展示了S = 1的KAFM NHNiMoOH,它具有Kagome晶格的三重对称性,但存在显著的位点缺失,占有率约为64%。通过在魏斯温度|θW|以下对有序的抑制以及在磁化数据中观察到铁磁和反铁磁特征,证明了阻挫以及交换相互作用之间的竞争。基于磁转变和铁磁信号的交流场频率依赖性,预测了一种半自旋玻璃基态。