English

Coulomb effects in granular materials at not very low temperatures

Disordered Systems and Neural Networks 2009-11-10 v1 Mesoscale and Nanoscale Physics

Abstract

We consider effects of Coulomb interaction in a granular normal metal at not very low temperatures suppressing weak localization effects. In this limit calculations with the initial electron Hamiltonian are reduced to integrations over a phase variable with an effective action, which can be considered as a bosonization for the granular metal. Conditions of the applicability of the effective action are considered in detail and importance of winding numbers for the phase variables is emphasized. Explicit calculations are carried out for the conductivity and the tunneling density of states in the limits of large g1g\gg 1 and small g1g\ll 1 tunnelling conductances. It is demonstrated for any dimension of the array of the grains that at small gg the conductivity and the tunnelling density of states decay with temperature exponentially. At large gg the conductivity also decays with decreasing the temparature and its temperature dependence is logarithmic independent of dimensionality and presence of a magnetic field. The tunnelling density of states for g1g\gg 1 is anomalous in any dimension but the anomaly is stronger than logarithmic in low dimensions and is similar to that for disordered systems. The formulae derived are compared with existing experiments. The logarithmic behavior of the conductivity at large gg obtained in our model can explain numerous experiments on systems with a granular structure including some high TcT_{c} materials.

Keywords

Cite

@article{arxiv.cond-mat/0302257,
  title  = {Coulomb effects in granular materials at not very low temperatures},
  author = {K. B. Efetov and A. Tschersich},
  journal= {arXiv preprint arXiv:cond-mat/0302257},
  year   = {2009}
}

Comments

30 pages