High-temperature superconductivity in the two-dimensional t-J model: Gutzwiller wavefunction solution


Autoria(s): Kaczmarczyk, Jan; Buenemann, Joerg; Spalek, Jozef
Data(s)

14/07/2014

Resumo

A systematic diagrammatic expansion for Gutzwiller wavefunctions (DE-GWFs) proposed very recently is used for the description of the superconducting (SC) ground state in the two-dimensional square-lattice t-J model with the hopping electron amplitudes t (and t') between nearest (and next-nearest) neighbors. For the example of the SC state analysis we provide a detailed comparison of the method's results with those of other approaches. Namely, (i) the truncated DE-GWF method reproduces the variational Monte Carlo (VMC) results and (ii) in the lowest (zeroth) order of the expansion the method can reproduce the analytical results of the standard Gutzwiller approximation (GA), as well as of the recently proposed 'grand-canonical Gutzwiller approximation' (called either GCGA or SGA). We obtain important features of the SC state. First, the SC gap at the Fermi surface resembles a d(x2-y2) wave only for optimally and overdoped systems, being diminished in the antinodal regions for the underdoped case in a qualitative agreement with experiment. Corrections to the gap structure are shown to arise from the longer range of the real-space pairing. Second, the nodal Fermi velocity is almost constant as a function of doping and agrees semi-quantitatively with experimental results. Third, we compare the

Identificador

http://dx.doi.org/10.15488/388

http://www.repo.uni-hannover.de/handle/123456789/411

Idioma(s)

eng

Publicador

Bristol : IOP Publishing Ltd.

Relação

http://dx.doi.org/10.1088/1367-2630/16/7/073018

ESSN:1367-2630

Direitos

CC BY 3.0

https://creativecommons.org/licenses/by/3.0/de/

frei zugänglich

Fonte

New Journal Of Physics 16 (2014)

Palavras-Chave #t-J model #high-temperature superconductivity #Gutzwiller wave function #unconventional superconductivity #variational Monte-Carlo method #mean-field theory #dimensional fermi-surface #hubbard-model #state #transition #pseudogap #oxides #instability #competition #ansatz #ddc:530
Tipo

status-type:publishedVersion

doc-type:article

doc-type:Text