中文

Systematic Low-Energy Effective Field Theory for Electron-Doped Antiferromagnets

强关联电子 2008-11-26 v1 高能物理 - 唯象学

摘要

In contrast to hole-doped systems which have hole pockets centered at (±π2a,±π2a)(\pm \frac{\pi}{2a},\pm \frac{\pi}{2a}), in lightly electron-doped antiferromagnets the charged quasiparticles reside in momentum space pockets centered at (πa,0)(\frac{\pi}{a},0) or (0,πa)(0,\frac{\pi}{a}). This has important consequences for the corresponding low-energy effective field theory of magnons and electrons which is constructed in this paper. In particular, in contrast to the hole-doped case, the magnon-mediated forces between two electrons depend on the total momentum P\vec P of the pair. For P=0\vec P = 0 the one-magnon exchange potential between two electrons at distance rr is proportional to 1/r41/r^4, while in the hole case it has a 1/r21/r^2 dependence. The effective theory predicts that spiral phases are absent in electron-doped antiferromagnets.

引用

@article{arxiv.cond-mat/0612363,
  title  = {Systematic Low-Energy Effective Field Theory for Electron-Doped Antiferromagnets},
  author = {C. Brügger and C. P. Hofmann and F. Kämpfer and M. Moser and M. Pepe and U. -J. Wiese},
  journal= {arXiv preprint arXiv:cond-mat/0612363},
  year   = {2008}
}

备注

25 pages, 7 figures