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LiYbO_{2}中螺旋自旋液体的实验证据。

Experimental Evidence for the Spiral Spin Liquid in LiYbO_{2}.

机构信息

School of Chemistry, University of Birmingham, Edgbaston, Birmingham B15 2TT, United Kingdom.

Institut Laue-Langevin, 71 avenue des Martyrs, CS20156, 38042 Grenoble Cédex 9, France.

出版信息

Phys Rev Lett. 2023 Apr 21;130(16):166703. doi: 10.1103/PhysRevLett.130.166703.

Abstract

Spiral spin liquids are an exotic class of correlated paramagnets with an enigmatic magnetic ground state composed of a degenerate manifold of fluctuating spin spirals. Experimental realizations of the spiral spin liquid are scarce, mainly due to the prominence of structural distortions in candidate materials that can trigger order-by-disorder transitions to more conventionally ordered magnetic ground states. Expanding the pool of candidate materials that may host a spiral spin liquid is therefore crucial to realizing this novel magnetic ground state and understanding its robustness against perturbations that arise in real materials. Here, we show that the material LiYbO_{2} is the first experimental realization of a spiral spin liquid predicted to emerge from the J_{1}-J_{2} Heisenberg model on an elongated diamond lattice. Through a complementary combination of high-resolution and diffuse neutron magnetic scattering studies on a polycrystalline sample, we demonstrate that LiYbO_{2} fulfills the requirements for the experimental realization of the spiral spin liquid and reconstruct single-crystal diffuse neutron magnetic scattering maps that reveal continuous spiral spin contours-a characteristic experimental hallmark of this exotic magnetic phase.

摘要

螺旋自旋液体是一类奇特的关联顺磁体,其神秘的基态磁结构由一个简并的自旋螺旋涨落能谱组成。螺旋自旋液体的实验实现很少,主要是因为候选材料中结构畸变的突出,这可能引发无序到更常规有序磁基态的序-无序转变。因此,扩大可能存在螺旋自旋液体的候选材料池对于实现这种新型磁基态以及理解其对实际材料中出现的微扰的稳健性至关重要。在这里,我们表明 LiYbO_{2} 是第一个实验实现了从拉长的金刚石晶格上的 J_{1}-J_{2} 海森堡模型预测的螺旋自旋液体。通过对多晶样品进行高分辨率和漫散射中子磁散射研究的互补组合,我们证明了 LiYbO_{2} 满足实验实现螺旋自旋液体的要求,并重建了单晶漫散射中子磁散射图谱,揭示了连续的螺旋自旋轮廓-这是这种奇异磁相的一个特征实验标志。

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