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石墨烯双势垒结构中的输运特性 被引量:4

Transport properties of double-barrier structures in graphene
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摘要 利用Landauer-Büttiker散射理论和传递矩阵方法研究了单层石墨烯双势垒结构中的隧穿几率和电导。计算结果表明:即使存在克莱因隧穿效应,单层石墨烯双势垒结构中的量子隧穿仍然与势阱宽度和势垒高度密切相关。隧穿几率和电导表现出复杂的振荡行为,振荡的振幅和周期敏感地依赖于势阱宽度、势垒高度、电子的入射能量和入射角度。因此,可以通过改变系统的结构参数对单层石墨烯双势垒结构中的电子输运性质进行控制。 Based on the Landauer-Biittiker scattering formalism and transfer matrix method, the transmission coefficient and the conductance of electrons tunneling through a double-barrier structure in the monolayer graphene are investigated. The results indicate that the transmission probability is related directly to the well width and the harrier height, even if Klein tunneling exists in the graphene structure. The transmission coefficient and the conductance exhibit complicated oscillations. The magnitude and period of oscillation depend sensitively on the well width, the barrier height, the incident energy and the incident angles of carriers. Thus, the transport properties of a double-barrier structure in the monolayer graphene can be controlled by the configuration of the structure.
作者 张红梅
出处 《河北科技大学学报》 CAS 北大核心 2011年第6期536-540,共5页 Journal of Hebei University of Science and Technology
基金 国家自然科学基金资助项目(10974043) 河北科技大学基金资助项目(XL200825)
关键词 石墨烯 双势垒结构 隧穿 DIRAC方程 graphene double-barrier structures transmission Dirac equation
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参考文献16

  • 1CASTRO N A H, GUINEA F, PERES N M R, et al. The electronic properties of graphene[J]. Rev Mod Phys, 2009, 81(1) : 109 -162.
  • 2NOVOSELOV K S, GEIM A K, MOROZOV S V, et al. Electric field effect in atomically thin carbon films[J]. Science, 2004, 306: 666-669.
  • 3NOVOSELOV K S, GEIM A K, MOROZOV S V, et al. Two-dimensional gas of massless Dirac fermions in graphene[J]. Nature (London), 2005,438: 197-200.
  • 4CASTRO E V, NOVOSELOV K S, MOROZOV S V, et al. Biased bilayer graphene: Semiconductor with a gap tunable by the electric field effect[J]. Phys Rev Lett, 2007, 99(21): 216802 pp. 1-4.
  • 5KATSNELSON M I, NOVOSELOV K S, GEIM A K. Chiral tunnelling and the Klein paradox in graphene[J]. Nature Phys,2006, 2(9): 620-625.
  • 6BAI Chun-xu, ZHANG Xiang-dong. Klein paradox and resonant tunneling in a graphene superlattice[J]. Phys Rev B, 2007,76(7): 075430 pp. 1-7.
  • 7BARBIER M, PEETERS F M, VASILOPOULOS P, et al. Dirac and Klein-Gordon particles in one-dimensional periodic potentials[J]. Phys Rev B, 2008,77(11): 115446 pp. 1 9.
  • 8BREY L, FERTIG H A. Emerging aero modes for graphene in a periodic potential[J]. Phys Rev Lett, 2009, 103(4) :046809 pp. 1-4.
  • 9WANG L G, ZHU S Y. Electronic band gaps and transport properties in graphene superlattices with one-dimensional periodic potentials of square barriers[J]. Phys Rev B, 2010, 81(20): 205444 pp. 1-9.
  • 10WANG L G, TSE Y C, ZHU S Y. Tunneling states in graphene heterostructures consisting of two different graphene superlattices[J]. J Appl Phys, 2011, 109(9): 093703 pp. 1-4.

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同被引文献81

  • 1刘玉文,李小龙,张翠芬,黄玉东.聚合物电解质与锂电极界面的阻抗谱分析[J].电源技术,2004,28(9):533-537. 被引量:1
  • 2张红梅,刘德.传递矩阵方法与矩形势垒的量子隧穿[J].河北科技大学学报,2006,27(3):196-199. 被引量:10
  • 3苑克国,王维坤,王安邦,曹高萍.添加剂对多硫代聚苯胺电化学性能的影响[J].电池,2007,37(2):86-88. 被引量:4
  • 4RATINAC K R, YANG W R, GOODING J J, et al. Graphene and related materials in electrochemical sensing[J]. Electroanalysis, 2011, 23(4) :803-826.
  • 5LI J, LIU C Y, CHENG C. Electrochemical detection of hydroquinone by graphene and Pt-graphene hybrid material synthesized through a microwave-assisted chemical reduction process[J]. Electrochimica Acta, 2011, 56(6):2712-2716.
  • 6YAN J, WEI T, SHAO B, et al. Preparation of a graphene nanosheet/polyaniline composite with high specific capacitance[J]. Carbon, 2010, 48(2) :487-493.
  • 7SUN C L, LEE H H, YANG J M, et al. The simultaneous electrochemical detection of ascorbic acid, dopamine, and uric acid using gra- phene/size-selected Pt nanocomposites[J]. Biosensors and Bioelectronies, 2011, 26(8):3450-3455.
  • 8PHILLIIPS P E, STUBER G D, HEIEN M L, et al. Subsecond dopamine release promotes cocaine seeking[J]. Nature, 2003, 422(6932) :614-618.
  • 9CHATRAEI F, ZARE H. A comparative study of the electrochemical characteristic and simultaneous determination of dopamine, acet- aminophen, and aspirin at a ruthenium oxide nanoparticles modified glassy carbon electrode versus a bare one[J]. Anal Methods, 2012, 4(9) :2940-2947.
  • 10ALIPOUR E, MAJIDI M R, SAADATIRAD A, et al. Simultaneous determination of dopamine and uric acid in biological samples on the pretreated pencil graphite electrode[J]. Electroehimiea Acta, 2013, 91 (28) z 36-42.

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