English

Experimental Evidence for a Coulomb Gap in Two Dimensions

Condensed Matter 2009-10-28 v1

Abstract

We have studied the resistivity, ρ\rho, of a two-dimensional electron system in silicon in the temperature range 200 mK < T < 7.5 K at zero magnetic field at low electron densities, when the electron system is in the insulating regime. Our results show that at an intermediate temperature range ρ=ρ0exp[(T0/T)1/2]\rho=\rho_0 exp[(T_0/T)^{1/2}] for at least four orders of magnitude up to 3x10^9 Ohms. This behavior is consistent with the existence of a Coulomb gap. Near the metal/insulator transition, the prefactor was found to be close to h/e2h/e^2, and resistivity scales with temperature. For very low electron densities, nsn_s, the prefactor diminishes with diminishing nsn_s. A comparison with the theory shows that a specific set of conditions are necessary to observe the behavior of resistivity consistent with the existence of the Coulomb gap.

Keywords

Cite

@article{arxiv.cond-mat/9506006,
  title  = {Experimental Evidence for a Coulomb Gap in Two Dimensions},
  author = {Whitney Mason and S. V. Kravchenko and G. E. Bowker and J. E. Furneaux},
  journal= {arXiv preprint arXiv:cond-mat/9506006},
  year   = {2009}
}

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