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首页> 外文期刊>The European physical journal, B. Condensed matter physics >Spin-wave spectrum of a two-dimensional itinerant electron system: Analytic results for the incommensurate spiral phase in the strong-coupling limit
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Spin-wave spectrum of a two-dimensional itinerant electron system: Analytic results for the incommensurate spiral phase in the strong-coupling limit

机译:二维迭代电子系统的自旋波谱:强耦合极限中不相称螺旋相的解析结果

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We study the zero-temperature spin fluctuations of a two-dimensional itinerant-electron system with an incommensurate magnetic ground state described by a single-band Hubbard Hamiltonian. We introduce the (broken-symmetry) magnetic phase at the mean-field (Hartree-Fock) level through a spiral spin configuration with characteristic wave vector Q different in general from the antiferromagnetic wave vector Q_(AF), and consider spin fluctuations over and above it within the electronic random-phase (RPA)approximation. We obtain a closed system of equations for the generalized wave vector and frequency dependent susceptibilities, which are equivalent to the ones reported recently by Brenig. We obtain, in addition, analytic results for the spin-wave dispersion relation in the strong-coupling limit of the Hubbard Hamiltonian and find that at finite doping the spin-wave dispersion relation has a hybrid form between that associated with the (localized) Heisenberg model and that associated with the (long-range) RKKY exchange interaction. We also find an instability of the spin-wave spectrum in a finite region about the center of the Brillouin zone, which signals a physical instability toward a different spin- or, possibly, charge-ordered phase, as, for example, the stripe structures observed in the high-T_c materials. We expect, however, on physical grounds that for wave vectors external to this region the spin-wave spectrum that we have determined should survive consideration of more sophisticated mean-field solutions.
机译:我们研究了由单带哈伯德·哈密顿量描述的具有不相称的磁性基态的二维巡回电子系统的零温度自旋涨落。我们通过具有特征波矢量Q通常不同于反铁磁波矢量Q_(AF)的螺旋自旋结构在平均场(Hartree-Fock)水平引入(破对称)磁相,并考虑和在电子随机相位(RPA)近似值之内。对于广义波矢量和频率相关的磁化率,我们获得了一个封闭的方程组,该系统与Brenig最近报道的等效。此外,我们获得了在哈伯德哈密顿量的强耦合极限中的自旋波色散关系的解析结果,并且发现在有限掺杂时,自旋波色散关系在与(局部)海森堡相关的形式之间具有混合形式模型以及与(远程)RKKY交换交互相关的模型。我们还在布里渊区中心附近的有限区域中发现了自旋波谱的不稳定性,这向不同的自旋或可能的电荷有序相(例如,条带结构)发出了物理不稳定性的信号在高T_c材料中观察到。但是,我们期望从物理角度出发,对于该区域外部的波矢量,我们确定的自旋波谱应该能够在考虑更复杂的平均场解决方案后继续存在。

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