COULOMB-BLOCKADE OF RESONANT-TUNNELING

被引:19
作者
IMAM, HT
PONOMARENKO, VV
AVERIN, DV
机构
[1] AF IOFFE PHYS TECH INST,ST PETERSBURG 194021,RUSSIA
[2] MOSCOW MV LOMONOSOV STATE UNIV,DEPT PHYS,MOSCOW 119899,RUSSIA
来源
PHYSICAL REVIEW B | 1994年 / 50卷 / 24期
关键词
D O I
10.1103/PhysRevB.50.18288
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We have considered the influence of electromagnetic fluctuations on electron tunneling via one nondegenerate resonant level, the problem that is relevant for electron transport through quantum dots in the Coulomb blockade regime. We show that the overall effect of the fluctuations depends on whether the electron bands in external electrodes are empty or filled. In the empty band case, depending on the relation between the tunneling rate and characteristic frequency of the fluctuations, the field either simply shifts the conductance peak (for rapid tunneling, ) or broadens it (for). In the latter case, the system can be in three different regimes for different values of the coupling g between electrons and the field. Increasing interaction strength in the region g<1 leads to gradual suppression of the conductance peak at the bare energy of the resonant level 0, while at g1 it leads to the formation of a new peak of width Ec/g1/2 at the energy 0+Ec, where Ec is a charging energy. For intermediate values of g the conductance is nonvanishing in the entire energy range from 0 to 0+Ec. These results provide a possible explanation for the experimentally observed extra width of the conductance resonances at low temperatures. For filled bands the problem is essentially multielectron in character. One consequence of this is that, in contrast to the situation with the empty band, the fluctuations of the resonant level do not suppress conductance at resonance for g<1. At g>1 the Coulomb gap appears in the position of the resonant level as a function of its bare energy, which leads to suppression of conductance. © 1994 The American Physical Society.
引用
收藏
页码:18288 / 18298
页数:11
相关论文
共 22 条
  • [1] ABRAMOWITZ M, 1972, HDB MATH FUNCTIONS, pCH6
  • [2] AVERIN DV, 1992, SINGLE CHARGE TUNNEL
  • [3] QUANTUM TRANSPORT IN THE PRESENCE OF PHASE-BREAKING SCATTERING - GENERALIZED LANDAUER FORMULA
    FENG, SC
    [J]. PHYSICS LETTERS A, 1990, 143 (08) : 400 - 404
  • [4] EFFECTS OF QUANTUM LEVELS ON TRANSPORT THROUGH A COULOMB ISLAND
    FOXMAN, EB
    MCEUEN, PL
    MEIRAV, U
    WINGREEN, NS
    MEIR, Y
    BELK, PA
    BELK, NR
    KASTNER, MA
    WIND, SJ
    [J]. PHYSICAL REVIEW B, 1993, 47 (15): : 10020 - 10023
  • [5] SINGULAR LOW-ENERGY PROPERTIES OF AN IMPURITY MODEL WITH FINITE-RANGE INTERACTIONS
    GIAMARCHI, T
    VARMA, CM
    RUCKENSTEIN, AE
    NOZIERES, P
    [J]. PHYSICAL REVIEW LETTERS, 1993, 70 (25) : 3967 - 3970
  • [6] GLAZMAN LI, 1988, ZH EKSP TEOR FIZ+, V94, P292
  • [7] CONFINEMENT AND SINGLE-ELECTRON TUNNELING IN SCHOTTKY-GATED, LATERALLY SQUEEZED DOUBLE-BARRIER QUANTUM-WELL HETEROSTRUCTURES
    GUERET, P
    BLANC, N
    GERMANN, R
    ROTHUIZEN, H
    [J]. PHYSICAL REVIEW LETTERS, 1992, 68 (12) : 1896 - 1899
  • [8] ON RESONANT TUNNELING
    HALBRITTER, J
    [J]. SURFACE SCIENCE, 1982, 122 (01) : 80 - 98
  • [9] SUPPRESSION OF QUANTIZED CONDUCTANCE BY A RESISTIVE ENVIRONMENT
    HEKKING, FWJ
    NAZAROV, YV
    SCHON, G
    [J]. EUROPHYSICS LETTERS, 1992, 20 (03): : 255 - 260
  • [10] Ingold G.-L., 1992, SINGLE CHARGE TUNNEL