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Kitaev 自旋液体的蒸发。

Vaporization of Kitaev spin liquids.

机构信息

Department of Physics, Tokyo Institute of Technology, Ookayama, 2-12-1, Meguro, Tokyo 152-8551, Japan.

Department of Applied Physics, University of Tokyo, Hongo, 7-3-1, Bunkyo, Tokyo 113-8656, Japan.

出版信息

Phys Rev Lett. 2014 Nov 7;113(19):197205. doi: 10.1103/PhysRevLett.113.197205.

Abstract

The quantum spin liquid is an exotic quantum state of matter in magnets. This state is a spin analog of liquid helium that does not solidify down to the lowest temperature due to strong quantum fluctuations. In conventional fluids, the liquid and gas possess the same symmetry and adiabatically connect to each other by bypassing the critical end point. We find that the situation is qualitatively different in quantum spin liquids realized in a three-dimensional Kitaev model; both gapless and gapped quantum spin liquid phases at low temperatures are always distinguished from the high-temperature paramagnet (spin gas) by a phase transition. The results challenge the common belief that the absence of thermodynamic singularity down to the lowest temperature is a symptom of a quantum spin liquid.

摘要

量子自旋液体是磁体中一种奇特的物质量子态。由于强量子涨落,这种状态是液体氦的自旋类比,即使在最低温度下也不会凝固。在常规液体中,液体和气体具有相同的对称性,并通过绕过临界点相互绝热连接。我们发现,在三维 Kitaev 模型中实现的量子自旋液体中,情况本质上是不同的;无论是无能隙还是有能隙的量子自旋液体相,在低温下总是通过相变与高温顺磁体(自旋气体)区分开来。这些结果挑战了一种普遍观点,即最低温度下没有热力学奇点是量子自旋液体的一个特征。

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