arXiv · cond-mat/9407039
Hole Pockets in the Doped 2D Hubbard Model
Abstract
The electronic momentum distribution ${\rm n({\bf k})}$ of the two dimensional Hubbard model is studied for different values of the coupling ${\rm U/t}$, electronic density ${\rm \langle n \rangle}$, and temperature, using quantum Monte Carlo techniques. A detailed analysis of the data on $8\times 8$ clusters shows that features consistent with hole pockets at momenta ${\rm {\bf k}=(\pm {π\over{2}},\pm {π\over{2}})}$ appear as the system is doped away from half-filling. Our results are consistent with recent experimental data for the cuprates discussed by Aebi et al. (Phys. Rev. Lett. {\bf 72}, 2757 (1994)). In the range of couplings studied, the depth of the pockets is maximum at ${\rm \langle n \rangle \approx 0.9}$, and it increases with decreasing temperature. The apparent absence of hole pockets in previous numerical studies of this model is explained.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Adriana Moreo, Daniel Duffy. 1994-07-07. Hole Pockets in the Doped 2D Hubbard Model. https://doi.org/10.1007/bf00752299
Cite the original work for its findings. Save a collection to share your selection of sources.