Gaussian and Gaussian-pulsed-like Fermi velocity graphene structures

被引:0
|
作者
Garcia-Cervantes, H. [1 ]
Escalera Santos, G. J. [2 ]
Garcia-Rodriguez, F. J. [3 ]
Rodriguez-Gonzalez, R. [4 ]
Rodriguez-Vargas, I [4 ]
机构
[1] Univ Tecnol Leon, Tecnol Emergentes Ind & Informat, Blvd Univ Tecnol 225, Leon 37670, Guanajuato, Mexico
[2] Univ Autonoma Chiapas, Fac Ciencias Fis & Matemat, Ciudad Univ,Calz Emiliano Zapata Km 8, Tuxtla Gutierrez 29050, Chiapas, Mexico
[3] Tecnol Nacl Mexico, Dept Ingn Mecatron, Inst Tecnol Celaya, Antonio Garcia Cubas Pte 600 Esq Ave Tecnol, Celaya 38010, Guanajuato, Mexico
[4] Univ Autonoma Zacatecas, Unidad Acad Ciencia & Tecnol Luz & Mat, Circuto Marie Curie S-N, Zacatecas 98160, Zacatecas, Mexico
关键词
graphene; Gaussian-pulsed-like profile; Gaussian profile; Fermi velocity superlattices; ELECTRON-TRANSPORT; BAND-GAP; SUPERLATTICES; CONDUCTANCE;
D O I
10.1088/1361-648X/ad07f2
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
Gaussian and Gaussian-related structures are quite attractive due to its versatility to modulate the electronic transport, including its possibility as electron filters. Here, we show that these non-conventional profiles are not the exception when dealing with Fermi velocity barriers in monolayer graphene. In particular, we show that Gaussian Fermi velocity graphene barriers (G-FVGBs) and Gaussian-pulsed-like Fermi velocity graphene superlattices (GPL-FVGSLs) can serve as electron band-pass filters and oscillating conductance structures. We reach this conclusion by theoretically studying the transmission and transport properties of the mentioned structures. The study is based on the continuum model, the transfer matrix method and the Landauer-Buttiker formalism. We find nearly flat transmission bands or pass bands for G-FVGBs modulable through the system parameters. The pass bands improve as the maximum ratio of Fermi velocities ( xi max ) increases, however its omnidirectional range is reduced. These characteristics result in a decaying conductance (integrated transmission) with xi max . The integrated transmission remains practically unaltered with the size of the system due to the saturation of the electron pass band filtering. In the case of GPL-FVGSLs the GPL profile results in regions of high transmission probability that can merge as flat transmission minibands if the pulse fraction and the superlattice parameters are appropriately tuned. The GPL profile also results in conductance (integrated transmission) oscillations that can be multiplied or reduced in number by adjusting the pulse fraction as well as the superlattice parameters.
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页数:12
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