论文标题

$ J_1 $ - $ J_2 $ Square Grattice AntiferRomagnet rbmoopo $ _4 $ cl中的压力引起的相变

Pressure-induced phase transition in the $J_1$-$J_2$ square lattice antiferromagnet RbMoOPO$_4$Cl

论文作者

Takeda, Hikaru, Yamauchi, Touru, Takigawa, Masashi, Ishikawa, Hajime, Hiroi, Zenji

论文摘要

我们报告磁化和$^{31} $ p NMR测量结果,在RBMoopo $ _4 $ CL上高达6.4〜GPA下,这是一种沮丧的Square-Prattice Antifermagnet,具有竞争性的最近邻居和新的纽约 - 尼克啤酒和尼克啤酒的相互作用。 NMR移位的压力依赖性和转移的超精细耦合常数的异常表明,在2.6〜GPA处的结构相变,可能会破坏镜像对称性并触发交换相互作用的显着变化。实际上,磁有序状态中的NMR光谱揭示了从3.3〜GPA以下的柱状抗铁磁(CAF)订单变化到3.9〜GPA高于3.9〜GPA的NéelAntyerantantant抗铁磁性(NAF)。自旋晶格松弛率$ 1/t_1 $还表明,随着压力,主导磁性波动从CAF型变为NAF型。尽管3.3和3.9 GPA之间的中间压力区域的NMR光谱显示CAF和NAF相共存,但$ 1/t_1 $的一定成分显示出副磁性的行为,并持续旋转自旋波动,从而使量子无序相位可能性。在环境压力下,具有异常非单调温度依赖性的自旋波动的易于平面各向异性在高压下逆转到伊索各向异性。旋转1/2系统的这种意外的各向异性行为可能归因于MO-4 $ D $电子的强旋轨耦合。

We report results of magnetization and $^{31}$P NMR measurements under high pressure up to 6.4~GPa on RbMoOPO$_4$Cl, which is a frustrated square-lattice antiferromagnet with competing nearest-neighbor and next-nearest-neighbor interactions. Anomalies in the pressure dependences of the NMR shift and the transferred hyperfine coupling constants indicate a structural phase transition at 2.6~GPa, which is likely to break mirror symmetry and triggers significant change of the exchange interactions. In fact, the NMR spectra in magnetically ordered states reveal a change from the columnar antiferromagnetic (CAF) order below 3.3~GPa to the Néel antiferromagnetic (NAF) order above 3.9~GPa. The spin lattice relaxation rate $1/T_1$ also indicates a change of dominant magnetic fluctuations from CAF-type to NAF-type with pressure. Although the NMR spectra in the intermediate pressure region between 3.3 and 3.9 GPa show coexistence of the CAF and NAF phases, a certain component of $1/T_1$ shows paramagnetic behavior with persistent spin fluctuations, leaving possibility for a quantum disordered phase. The easy-plane anisotropy of spin fluctuations with unusual nonmonotonic temperature dependence at ambient pressure gets reversed to the Ising anisotropy at high pressures. This unexpected anisotropic behavior for a spin 1/2 system may be ascribed to the strong spin-orbit coupling of Mo-4$d$ electrons.

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