A model for Andreev reflection induced by d-wave superconductivity in graphene nanoribbons

安德列夫反射 超导电性 材料科学 凝聚态物理 反射(计算机编程) 石墨烯 石墨烯纳米带 纳米技术 物理 计算机科学 程序设计语言
作者
Y. Takagaki
出处
期刊:Modelling and Simulation in Materials Science and Engineering [IOP Publishing]
卷期号:33 (1): 015012-015012
标识
DOI:10.1088/1361-651x/ad9ca0
摘要

Abstract An approximate method for implementing the d -wave superconductivity in the tight-binding lattice model for graphene is proposed. A real-space pair potential having the d -wave symmetry is derived by regarding the honeycomb lattice as a multi-component rectangular system consisting of four sublattices. The reliability of the method is tested for a strip of the conventional square lattice, where the approximation is found to work well for lower-lying transverse modes. Unexpectedly, the validity excels for all the modes in the limit of the infinitely large superconducting energy gap as well as for the zero gap. Remarkable dependencies of the quantized wavenumbers on the inclination of the d -wave symmetry is thereby revealed. The Andreev reflection induced by the d -wave superconductor is reproduced by the modified method for the square lattice as long as the superconducting energy gap is small. The quasiparticle propagation at finite excitation energies, however, cannot be treated reliably when the superconductivity is introduced in armchair graphene nanoribbons (NRs), i.e. a half of the NR is normal-conducting and the other half is superconducting. The restriction of the applicability for the honeycomb lattice originates primarily from the point that the hopping between the lattice sites is not fully mirror-symmetrical.
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