Li Han, Lv Enze, Xi Ning, Gao Yuan, Qi Yang, Li Wei, Su Gang
Kavli Institute for Theoretical Sciences, University of Chinese Academy of Sciences, Beijing, 100190, China.
Institute of Theoretical Physics, Chinese Academy of Sciences, Beijing, 100190, China.
Nat Commun. 2024 Aug 15;15(1):7011. doi: 10.1038/s41467-024-51146-7.
Traditional magnetic sub-Kelvin cooling relies on the nearly free local moments in hydrate paramagnetic salts, whose utility is hampered by the dilute magnetic ions and low thermal conductivity. Here we propose to use instead fractional excitations inherent to quantum spin liquids (QSLs) as an alternative, which are sensitive to external fields and can induce a very distinctive magnetocaloric effect. With state-of-the-art tensor-network approach, we compute low-temperature properties of Kitaev honeycomb model. For the ferromagnetic case, strong demagnetization cooling effect is observed due to the nearly free Z vortices via spin fractionalization, described by a paramagnetic equation of state with a renormalized Curie constant. For the antiferromagnetic Kitaev case, we uncover an intermediate-field gapless QSL phase with very large spin entropy, possibly due to the emergence of spinon Fermi surface and gauge field. Potential realization of topological excitation magnetocalorics in Kitaev materials is also discussed, which may offer a promising pathway to circumvent existing limitations in the paramagnetic hydrates.
传统的亚开尔文磁制冷依赖于水合物顺磁盐中近乎自由的局域磁矩,而稀释的磁性离子和低导热率限制了其应用。在此,我们提议改用量子自旋液体(QSL)固有的分数激发作为替代方案,这些激发对外部磁场敏感,并能诱发非常独特的磁热效应。我们采用最先进的张量网络方法,计算了 Kitaev 蜂窝模型的低温特性。对于铁磁情况,通过自旋分数化,近自由的 Z 涡旋导致了强烈的退磁冷却效应,其由具有重整化居里常数的顺磁状态方程描述。对于反铁磁 Kitaev 情况,我们发现了一个具有非常大自旋熵的中间场无隙 QSL 相,这可能是由于自旋子费米面和规范场的出现。我们还讨论了 Kitaev 材料中拓扑激发磁热效应的潜在实现,这可能为规避顺磁水合物的现有局限性提供一条有前景的途径。