论文标题

磁场对Naybs $ _2 $的量子自旋液体行为的影响

Magnetic field effects on the quantum spin liquid behaviors of NaYbS$_2$

论文作者

Wu, Jiangtao, Li, Jianshu, Zhang, Zheng, Liu, Changle, Gao, YongHao, Feng, Erxi, Deng, Guochu, Ren, Qingyong, Wang, Zhe, Chen, Rui, Embs, Jan, Zhu, Fengfeng, Huang, Qing, Xiang, Ziji, Chen, Lu, Wu, Yan, Choi, E. S., Qu, Zhe, Li, Lu, Wang, Junfeng, Zhou, Haidong, Su, Yixi, Wang, Xiaoqun, Chen, Gang, Zhang, Qingming, Ma, Jie

论文摘要

自旋轨道耦合是调节多体物理学的重要组成部分,尤其是对于许多自旋液体候选材料,例如稀土磁铁和基塔夫材料。 The rare-earth chalcogenides NaYbCh$_2$ (Ch = O, S, Se) is a congenital frustrating system to exhibit the intrinsic landmark of spin liquid by eliminating both the site disorders between Na$^{+}$ and Yb$^{3+}$ ions with the big ionic size difference and the Dzyaloshinskii-Moriya interaction with the perfect triangular lattice of the yb $^{3+} $ ions。温度与磁场相图是通过磁化,比热和中子散射测量值确定的。值得注意的是,中子衍射光谱和磁化曲线可能为一系列平面场的自旋构型提供显微镜证据,其中包括无序的自旋液态,120 $^{O} $ antiferromagnet和一半的磁力状态。此外,建议基态是来自非弹性中子散射的无间隙旋转液体,并且磁场可调节自旋轨道耦合。因此,在挫败的量子磁铁中,强旋轨耦合实质上富集了低能量的自旋物理。这个稀土家族可以提供一个良好的平台,用于探索量子自旋液态基态和量子磁过渡。

Spin-orbit coupling is an important ingredient to regulate the many-body physics, especially for many spin liquid candidate materials such as rare-earth magnets and Kitaev materials. The rare-earth chalcogenides NaYbCh$_2$ (Ch = O, S, Se) is a congenital frustrating system to exhibit the intrinsic landmark of spin liquid by eliminating both the site disorders between Na$^{+}$ and Yb$^{3+}$ ions with the big ionic size difference and the Dzyaloshinskii-Moriya interaction with the perfect triangular lattice of the Yb$^{3+}$ ions. The temperature versus magnetic-field phase diagram is established by the magnetization, specific heat, and neutron-scattering measurements. Notably, the neutron diffraction spectra and the magnetization curve might provide microscopic evidence for a series of spin configuration for in-plane fields, which include the disordered spin liquid state, 120$^{o}$ antiferromagnet, and one-half magnetization state. Furthermore, the ground state is suggested to be a gapless spin liquid from inelastic neutron scattering, and the magnetic field adjusts the spin orbit coupling. Therefore, the strong spin-orbit coupling in the frustrated quantum magnet substantially enriches low-energy spin physics. This rare-earth family could offer a good platform for exploring the quantum spin liquid ground state and quantum magnetic transitions.

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