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Spin and Charge Current in a Short Semiconducting Chain of Paramagnetic Ionic Blocks

机译:顺磁性离子块短半导体链中的自旋和充电电流

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We deal with the electric current flowing through a short chain of paramagnetic ionic blocks, coupled to metallic electrodes in the serial configuration. An original three-band Hubbard-Anderson Hamiltonian is diagonalised at the level of the single ionic block. A minimal but sufficient set of the latter's four hybridised eigenstates serves as a basis for the determination of the time-ordered temperature-dependent matrix Green functions, in terms of which all the current-voltage (I-V) characteristics can be expressed provided the coupling to the electrodes is weak. The separation of the opposite-spin contributions to the electric current and, consequently, the spin current from the left to right electrode can result from the on-site Coulomb repulsion term of Hubbard-Anderson Hamiltonian, with no spin polarisation at the electrodes, but with the Zeeman-like coupling of the centre to either a molecular or an external magnetic field.
机译:我们处理流经短顺磁离子块的电流,该短链以串联配置耦合到金属电极。原始的三段式Hubbard-Anderson哈密顿量在单个离子块的水平上被对角化。后者的四个混合本征态的最小但足够多的集合用作确定与温度相关的时间顺序矩阵Green函数的基础,根据该函数可以表示所有电流-电压(IV)特性,前提是耦合至电极很弱。相反自旋电流贡献的分离,因此,从左向右电极自旋电流的分离可以由哈伯德-安德森·哈密顿量的现场库仑排斥项产生,电极上没有自旋极化,但是中心与分子或外部磁场的塞曼式耦合。

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