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Tomonaga–Luttinger liquid behavior and spinon confinement in YbAlO3

机译:Tomonaga–Luttinger在YbAlO3中的液体行为和spin子限制

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摘要

Low dimensional quantum magnets are interesting because of the emerging collective behavior arising from strong quantum fluctuations. The one-dimensional (1D) S = 1/2 Heisenberg antiferromagnet is a paradigmatic example, whose low-energy excitations, known as spinons, carry fractional spin S = 1/2. These fractional modes can be reconfined by the application of a staggered magnetic field. Even though considerable progress has been made in the theoretical understanding of such magnets, experimental realizations of this low-dimensional physics are relatively rare. This is particularly true for rare-earth-based magnets because of the large effective spin anisotropy induced by the combination of strong spin–orbit coupling and crystal field splitting. Here, we demonstrate that the rare-earth perovskite YbAlO>3 provides a realization of a quantum spin S = 1/2 chain material exhibiting both quantum critical Tomonaga–Luttinger liquid behavior and spinon confinement–deconfinement transitions in different regions of magnetic field–temperature phase diagram.
机译:低维量子磁体很有趣,因为强量子涨落引起了新的集体行为。一维(1D)S = 1/2海森堡反铁磁体是一个范例,其低能激发称为自旋,其携带分数自旋S = 1/2。可以通过施加交错磁场来重新限制这些分数模式。即使在对这种磁体的理论理解上已经取得了很大的进步,但是这种低维物理学的实验实现还是相对罕见的。对于稀土类磁体尤其如此,因为强自旋轨道耦合和晶体场分裂的结合会引起较大的有效自旋各向异性。在这里,我们证明了稀土钙钛矿YbAlO > 3 提供了一种量子自旋S = 1/2链材料的实现,该材料同时具有不同的量子临界Tomonaga-Luttinger液体行为和旋子约束-脱限转变磁场温度区域图。

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