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首页> 外文期刊>Physical review. B, Condensed Matter And Materials Physics >Gapless quantum spin liquid, stripe, and antiferromagnetic phases in frustrated Hubbard models in two dimensions
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Gapless quantum spin liquid, stripe, and antiferromagnetic phases in frustrated Hubbard models in two dimensions

机译:二维受挫Hubbard模型中的无间隙量子自旋液体,条带和反铁磁相

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Unique features of the nonmagnetic insulator phase are revealed, and the phase diagram of the t-t′ Hubbard model containing the diagonal transfers t′ on a square lattice is presented. Using the path-integral renormal-ization group method, we find an antiferromagnetic phase for small next-nearest-neighbor transfer t′ and a stripe (or collinear) phase for large t′ in the Mott insulating region of the strong on-site interaction U. For intermediate t′/t~0.7 at large U/t > 7, we find a longer-period antiferromagnetic-insulator phase with 2 x 4 structure. In the Mott insulating region, we also find a quantum spin liquid (in other words, a nonmagnetic insulator) phase near the Mott transition to paramagnetic metals for the t-t′ Hubbard model on the square lattice as well as on the anisotropic triangular lattice. Correlated electrons often crystallize to the Mott insulator usually with some magnetic orders, whereas the "quantum spin liquid" has been a long-sought issue. We report numerical evidence that a nonmagnetic insulating phase gets stabilized near the Mott transition with remarkable properties: The two-dimensional Mott insulators on geometrically frustrated lattices contain a phase with gapless spin excitations and degeneracy of the ground state in the whole Brillouin zone of the total momentum. The obtained vanishing spin renormalization factor suggests that spin excitations do not propagate coherently in contrast to conventional phases, where there exist either magnons in symmetry-broken phases or particle-hole excitations in paramagnetic metals. It imposes a constraint on the possible pictures of quantum spin liquids and supports an interpretation for the existence of an unconventional quantum liquid. The present concept is useful in analyzing a variety of experimental results in frustrated magnets including organic BEDT-TTF compounds and ~3He atoms adsorbed on graphite.
机译:揭示了非磁性绝缘子相的独特特征,并给出了在方格上包含对角线转移t'的t-t'Hubbard模型的相图。使用路径积分重整化群方法,我们在强烈的现场相互作用的莫特绝缘区内找到了一个小铁磁相,用于下一近邻传递t',而一个条纹(或共线)相则用于大t'。在大U / t> 7时,对于中等t'/ t〜0.7,我们发现了一个较长周期的具有2 x 4结构的反铁磁绝缘体相。在Mott绝缘区域中,对于方格和各向异性三角晶格上的t-t'Hubbard模型,我们还在Mott转变为顺磁性金属的Mott跃迁附近发现了量子自旋液体(换句话说,是非磁性绝缘体)相。相关的电子通常以一定的磁性顺序结晶到Mott绝缘体,而“量子自旋液体”一直是人们长期以来一直在寻求的问题。我们报告了数值证据,表明非磁性绝缘相在Mott跃迁附近稳定并具有显着特性:几何受挫晶格上的二维Mott绝缘子包含一个无间隙自旋激发相,并且在整个布里渊区中均具有基态退化动量。获得的消失的自旋重归一化因子表明,自旋激发与常规相相比并没有相干地传播,常规相在对称断裂相中存在强子,在顺磁性金属中存在粒子-空穴激发。它对量子自旋液体的可能图像施加了限制,并支持对非常规量子液体的存在的解释。本概念可用于分析沮丧的磁体中的各种实验结果,包括有机BEDT-TTF化合物和吸附在石墨上的〜3He原子。

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