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Application of the Mean-Field Approximation to the Magnetic and Superconducting Phases of Quasi-One-Dimensional Metal

机译:将平均场近似应用于准一维金属磁性和超导相的应用

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摘要

We research under what condition the mean-field approximation can be applied to study ordered phases of quasi-one-dimensional metal. It is shown that the mean-field treatment is indeed permissible provided that it is applied not to the microscopic Hamiltonian (subject to severe one-dimensional high-energy fluctuations), but rather to effective Hamiltonian derived at the dimensional crossover scale. The resultant mean-field phase diagram has three ordered phases: spin density wave, charge density wave, and superconductivity. The density wave orders win if the Fermi surface nests well. Outcome of competition between the intra-chain and inter-chain electron repulsion determines the type (spin vs. charge) of the density wave. The ground state becomes superconducting (with unconventional order parameter) when the nesting is poor. The superconducting mechanism relies crucially on the one-dimensional fluctuations.
机译:我们在什么条件下研究平均场近似可以应用于研究准一维金属的有序相位。结果表明,平均场处理确实允许,条件是它不适用于微观哈密顿(经受严重的一维高能量波动),而是有效地在尺寸交叉量表中获得的哈密顿源。得到的平均场相图具有三个有序的阶段:旋转密度波,电荷密度波和超导性。如果Fermi表面嵌套,密度波命令赢得胜利。链内和链间电子排斥之间的竞争结果决定了密度波的类型(旋转Vs.电荷)。当嵌套差时,地状态变为超导(具有非传统订单参数)。超导机构迫切地依赖于一维波动。

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