Relationship Between Conductivity and Phase Coherence Length in Cuprates
Abstract
The large () and strongly temperature dependent resistive anisotropy of cuprates perhaps holds the key to understanding their normal state in-plane and out-of-plane conductivities. It can be shown that is determined by the ratio of the phase coherence lengths in the respective directions: . In layered crystals in which the out-of-plane transport is incoherent, is fixed, equal to the interlayer spacing. As a result, the T-dependence of is determined by that of , and vice versa, the in-plane phase coherence length can be obtained directly by measuring the resistive anisotropy. We present data for hole-doped () and () and show that of crystals with different doping levels can be well described by a two parameter universal function of the in-plane phase coherence length. In the electron-doped , the dependence indicates a crossover from incoherent to coherent transport in the c-direction.
Cite
@article{arxiv.cond-mat/9910016,
title = {Relationship Between Conductivity and Phase Coherence Length in Cuprates},
author = {C. C. Almasan and G. A. Levin and E. Cimpoiasu and T. Stein and C. L. Zhang and M. C. Deandrade and M. B. Maple and Hong Zheng and A. P. Paulikas and B. W. Veal},
journal= {arXiv preprint arXiv:cond-mat/9910016},
year = {2015}
}
Comments
5 pages, 2 figures