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Thermoelectric power in carbon nanotubes and quantum wires of nonlinear optical, optoelectronic, and related materials under strong magnetic field: Simplified theory and relative comparison

机译:强磁场下非线性光学,光电和相关材料的碳纳米管和量子线中的热电功率:简化的理论和相对比较

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摘要

We study thermoelectric power under strong magnetic field (TPM) in carbon nanotubes (CNTs) and quantum wires (QWs) of nonlinear optical, optoelectronic, and related materials. The corresponding results for QWs of III-V, ternary, and quaternary compounds form a special case of our generalized analysis. The TPM has also been investigated in QWs of II-VI, IV-VI, stressed materials, n-GaP, p-PtSb2, n-GaSb, and bismuth on the basis of the appropriate carrier dispersion laws in the respective cases. It has been found, taking QWs of n-CdGeAs2, n-Cd3As2, n-InAs, n-InSb, n-GaAs, n-Hg1?xCdxTe, n-In1?xGaxAsyP1?y lattice-matched to InP, p-CdS, n-PbTe, n-PbSnTe, n-Pb1?xSnxSe, stressed n-InSb, n-GaP, p-PtSb2, n-GaSb, and bismuth as examples, that the respective TPM in the QWs of the aforementioned materials exhibits increasing quantum steps with the decreasing electron statistics with different numerical values, and the nature of the variations are totally band-structure-dependent. In CNTs, the TPM exhibits periodic oscillations with decreasing amplitudes for increasing electron statistics, and its nature is radically different as compared with the corresponding TPM of QWs since they depend exclusively on the respective band structures emphasizing the different signatures of the two entirely different one-dimensional nanostructured systems in various cases. The well-known expression of the TPM for wide gap materials has been obtained as a special case under certain limiting conditions, and this compatibility is an indirect test for our generalized formalism. In addition, we have suggested the experimental methods of determining the Einstein relation for the diffusivity-mobility ratio and the carrier contribution to the elastic constants for materials having arbitrary dispersion laws.
机译:我们研究非线性光学,光电和相关材料的碳纳米管(CNT)和量子线(QW)在强磁场(TPM)下的热电功率。 III-V,三元和四元化合物的QW的相应结果构成了我们广义分析的一个特例。还根据相应情况下适当的载流子扩散规律,对II-VI,IV-VI,受压材料,n-GaP,p-PtSb2,n-GaSb和铋的QW中的TPM进行了研究。已经发现,取n-CdGeAs2,n-Cd3As2,n-InAs,n-InSb,n-GaAs,n-Hg1?xCdxTe,n-In1?xGaxAsyP1?y的QW与InP,p-CdS晶格匹配,n-PbTe,n-PbSnTe,n-Pb1→xSnxSe,应力n-InSb,n-GaP,p-PtSb2,n-GaSb和铋为例,上述材料的量子阱中的相应TPM呈现出增加的趋势量子级数随着电子统计量的减少而具有不同的数值,并且变化的性质完全取决于能带结构。在CNT中,TPM表现出振幅减小的周期性振荡以增加电子统计量,并且其性质与相应的QW的TPM相比根本不同,因为它们仅取决于各自的能带结构,强调两个完全不同的一个的不同特征。尺寸纳米结构系统在各种情况下。作为特定情况下的特殊情况,已经获得了宽间隙材料TPM的众所周知的表达方式,这种兼容性是对我们广义形式主义的间接检验。此外,我们建议了实验方法,以确定具有任意色散律的材料的扩散率-迁移率和载体对弹性常数的爱因斯坦关系。

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