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A Theoretical Study and Realization of New Spin Quantum Cross Structure Devices using Organic Materials

机译:采用有机材料的新型旋转量子交叉结构装置的理论研究与实现

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We have proposed a spin quantum cross structure (SQCS) device as a candidate beyond CMOS. The SQCS device consists of two ferromagnetic metal thin films with their edges crossed, and sandwiches a few atoms or molecules. In this work, the spin dependent transport formula has been derived for SQCS devices with collinear ferromagnetic electrodes within the framework of the Anderson Hamiltonian. Also, the calculation of the magnetoresistance (MR) ratio has been done as a function of renormalized transfer matrices including magnetostriction effects and the other effects phenomenologically. It is shown that the MR ratio can be controlled by changing the renormalized coupling constants. The MR ratio is represented by a new formula. Also, we have realized an SQCS device with Ni magnetic thin-film electrodes, sandwiching poly (3-hexylthiophene) (P3HT): 6, 6-phenyl-C61-butyric acid methyl ester (PCBM) organic molecules between both the electrodes. The current-voltage characteristics of SQCS devices were measured by a four-terminal method and agree well with the theoretical results, quantitatively.
机译:我们已经提出了旋转量子交叉结构(SQCS)设备作为超越CMOS的候选者。 SQCS装置由两个铁磁金属薄膜组成,其边缘交叉,并夹在几个原子或分子中。在这项工作中,已经为Anderson Hamiltonian的框架内的带共线铁磁电极的SQCS器件导出了自旋依赖式运输公式。而且,磁阻(MR)比的计算已经作为一种函数作为一种称为转移矩阵,包括磁致索效应和其他效果。结果表明,可以通过改变重型化耦合常数来控制MR比。 MR比例由新公式表示。此外,我们已经实现了具有Ni磁性薄膜电极的SQCS装置,夹在两个电极之间的聚(3-己基噻吩)(P3HT):6,6-苯基-C61-丁酸甲酯(PCBM)有机分子。 SQCS器件的电流电压特性通过四端方法测量,并且定量地与理论结果吻合。

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