Self-localization of holes in a lightly doped Mott insulator
Abstract
We show that lightly doped holes will be self-trapped in an antiferromagnetic spin background at low-temperatures, resulting in a spontaneous translational symmetry breaking. The underlying Mott physics is responsible for such novel self-localization of charge carriers. Interesting transport and dielectric properties are found as the consequences, including large doping-dependent thermopower and dielectric constant, low-temperature variable-range-hopping resistivity, as well as high-temperature strange-metal-like resistivity, which are consistent with experimental measurements in the high-T cuprates. Disorder and impurities only play a minor and assistant role here.
Cite
@article{arxiv.cond-mat/0402327,
title = {Self-localization of holes in a lightly doped Mott insulator},
author = {Su-Peng Kou and Z. Y. Weng},
journal= {arXiv preprint arXiv:cond-mat/0402327},
year = {2007}
}
Comments
13 pages, 4 figures; additional experimental data are included in Fig. 3 and some comments are added in the text