论文标题

在磁场下,蜂窝状抗铁磁铁ybcl $ _3 $的二维极限的量子关键bose气

Quantum critical Bose gas in the two-dimensional limit in the honeycomb antiferromagnet YbCl$_3$ under magnetic fields

论文作者

Matsumoto, Yosuke, Schnierer, Simon, Bruin, Jan A. N., Nuss, Jürgen, Reiss, Pascal, Jackeli, George, Kitagawa, Kentaro, Takagi, Hidenori

论文摘要

BEC是一种量子现象,其中宏观数量的玻色子占据最低的能量状态并在低温下获得连贯性。它不仅以$^4 $ HE和稀释原子气体的形式实现,而且还以量子磁铁的形式实现,在那里,由Matsubara-Matsuda旋转的旋转,凝结引入的硬核玻色子。在3D抗铁磁铁中,XY型长距离排序(LRO)发生在磁场诱导的过渡到完全极化状态(FP)附近,并且在过去几十年中已成功地描述为BEC。 3D磁铁中BEC的一个有吸引力的扩展是使其2D类似物。对于严格的2D系统,由于存在零能量处的有限状态密度,因此无法进行BEC,而Berezinskii-Kosterlitz-thouless(BKT)过渡可能会出现。在由堆叠的2D磁体组成的现实式准2D磁铁中,一个小而有限的层间耦合稳定了边缘LRO和BEC,但仍预计包括BKT波动在内的2D物理学仍将占主导地位。据报道,有一些系统显示出这种2D限制的BEC,但在很高的磁场下很难访问。蜂窝$ s $ = 1/2 Heisenberg AntiferRomagnet ybcl $ _3 $,带有内部层​​耦合$ j \ sim $ 5 k $ 5 k在平面磁场低的平面磁场上向FP状态表现为$ h _ {\ rm s} $ = 5.93 t的过渡。在由极小的层间耦合$ j _ {\ perp} $ 10 $^{ - 5} j $稳定的2D限制中。在量子临界点HS上,我们捕获了2D限量量子波动,作为在稀数极限内形成高度移动的2D Bose气体的形成。与原型3D系统相比,一种大量降低的有效玻色子 - 玻色子反击UEFF表明存在对2D独特的相互作用的对数重新归一化。

BEC is a quantum phenomenon, where a macroscopic number of bosons occupy the lowest energy state and acquire coherence at low temperatures. It is realized not only in $^4$He and dilute atomic gases, but also in quantum magnets, where hardcore bosons, introduced by the Matsubara-Matsuda transformation of spins, condense. In 3D antiferromagnets, an XY-type long-range ordering (LRO) occurs near a magnetic-field-induced transition to a fully polarized state (FP) and has been successfully described as a BEC in the last few decades. An attractive extension of the BEC in 3D magnets is to make their 2D analogue. For a strictly 2D system, BEC cannot take place due to the presence of a finite density of states at zero energy, and a Berezinskii-Kosterlitz-Thouless (BKT) transition may instead emerge. In a realistic quasi-2D magnet consisting of stacked 2D magnets, a small but finite interlayer coupling stabilizes marginal LRO and BEC, but such that 2D physics, including BKT fluctuations, is still expected to dominate. A few systems were reported to show such 2D-limit BEC, but at very high magnetic fields that are difficult to access. The honeycomb $S$ = 1/2 Heisenberg antiferromagnet YbCl$_3$ with an intra-layer coupling $J\sim$ 5 K exhibits a transition to a FP state at a low in-plane magnetic field of $H_{\rm s}$ = 5.93 T. Here, we demonstrate that the LRO right below $H_{\rm s}$ is a BEC in the 2D-limit stabilized by an extremely small interlayer coupling $J_{\perp}$ of 10$^{-5}J$. At the quantum critical point Hs, we capture 2D-limit quantum fluctuations as the formation of a highly mobile, interacting 2D Bose gas in the dilute limit. A much-reduced effective boson-boson repulsion Ueff as compared with that of a prototypical 3D system indicates the presence of a logarithmic renormalization of interaction unique to 2D.

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