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A Quantum Critical Bose Gas of Magnons in the Quasi-Two-dimensional Antiferromagnet YbCl3 under Magnetic Fields

NATURE PHYSICS(2024)

Max Planck Inst Solid State Res | Univ Tokyo

Cited 1|Views21
Abstract
Bose-Einstein condensation (BEC) is a quantum phenomenon in which a macroscopic number of bosons occupy the lowest energy state and acquire coherence at low temperatures. In three-dimensional antiferromagnets, a magnetic-field-induced transition has been successfully described as a magnon BEC. For a strictly two-dimensional (2D) system, it is known that BEC cannot take place due to the presence of a finite density of states at zero energy. However, in a realistic quasi-2D magnet consisting of stacked magnetic layers, a small but finite interlayer coupling stabilizes marginal BEC but such that 2D physics is still expected to dominate. This 2D-limit BEC behaviour has been reported in a few materials but only at very high magnetic fields that are difficult to access. The honeycomb S = 1/2 Heisenberg antiferromagnet YbCl3 exhibits a transition to a fully polarized state at a relatively low in-plane magnetic field. Here, we demonstrate the formation of a quantum critical 2D Bose gas at the transition field, which, with lowering the field, experiences a BEC marginally stabilized by an extremely small interlayer coupling. Our observations establish YbCl3, previously a Kitaev quantum spin liquid material, as a realization of a quantum critical BEC in the 2D limit.
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quasi-二维反铁磁体YbCl3在磁场作用下形成量子临界磁子Bose气体的研究

要点】:本研究在准二维反铁磁材料YbCl3中,发现了磁场诱导的量子临界Bose-Einstein凝聚现象,拓宽了对二维极限下BEC行为的理解。

方法】:通过精确控制磁场强度,研究YbCl3中磁子Bose-Einstein凝聚的形成条件,并结合量子场论分析系统在二维极限下的相变行为。

实验】:在YbCl3的过渡磁场下,通过降低磁场强度,实验观测到了一个由极小层间耦合微弱稳定的量子临界二维Bose气体,实验使用了特定的磁场和低温技术,数据集来自于对材料磁性质的详细测量。