Ground-State Properties of the t–J Model for the CuO Double-Chain Structure

IF 1.5 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Tatsuya Kaneko, S. Ejima, K. Sugimoto, Kazuhiko Kuroki
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引用次数: 0

Abstract

We investigate the ground-state properties of a correlated model for the double-chain structure in cuprates. We consider the $t$-$J$ model, in which the nearest-neighbor spin interaction $J_1$ is smaller than the next-nearest-neighbor interaction $J_2$ corresponding to the CuO double-chain structure. We vary $J_1$ from antiferromagnetic to ferromagnetic values and calculate the correlation functions including the superconducting pair correlation function. Employing the density-matrix renormalization group method, we show that the ground state for antiferromagnetic $J_1$ exhibits the hallmarks of the Luther-Emery liquid phase, in which the spin-singlet pair and charge-density-wave correlations exhibit power-law decays against distance, and the spin correlation function decays exponentially. Its signatures are gradually dismissed as $J_1$ approaches the ferromagnetic regime. Our findings suggest that the antiferromagnetic double-chain structure without ferromagnetic bonds is favorable for superconductivity.
氧化铜双链结构 t-J 模型的基态特性
我们研究了铜氧化物双链结构相关模型的基态性质。我们考虑了 $t$-$J$ 模型,其中最近邻自旋相互作用 $J_1$ 小于与氧化铜双链结构相对应的次最近邻相互作用 $J_2$。我们将 $J_1$ 从反铁磁变为铁磁值,并计算相关函数,包括超导对相关函数。利用密度矩阵重正化群方法,我们发现反铁磁性 $J_1$ 的基态显示了卢瑟-埃默里液相的特征,其中自旋-小卫星对和电荷密度-波相关性随距离呈幂律衰减,而自旋相关函数呈指数衰减。当 $J_1$ 接近铁磁机制时,其特征逐渐消失。我们的发现表明,没有铁磁键的反铁磁双链结构有利于超导。
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来源期刊
CiteScore
3.40
自引率
17.60%
发文量
325
审稿时长
3 months
期刊介绍: The papers published in JPSJ should treat fundamental and novel problems of physics scientifically and logically, and contribute to the development in the understanding of physics. The concrete objects are listed below. Subjects Covered JPSJ covers all the fields of physics including (but not restricted to) Elementary particles and fields Nuclear physics Atomic and Molecular Physics Fluid Dynamics Plasma physics Physics of Condensed Matter Metal, Superconductor, Semiconductor, Magnetic Materials, Dielectric Materials Physics of Nanoscale Materials Optics and Quantum Electronics Physics of Complex Systems Mathematical Physics Chemical physics Biophysics Geophysics Astrophysics.
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