Magnetic Properties of YBa_2Cu_3O_{7-δ} in a self-consistent approach: Comparison with Quantum-Monte-Carlo Simulations and Experiments
arXiv:cond-mat/9801181 · doi:10.1103/PhysRevB.59.6534
Abstract
We analyze single-particle electronic and two-particle magnetic properties of the Hubbard model in the underdoped and optimally-doped regime of \YBCO by means of a modified version of the fluctuation-exchange approximation, which only includes particle-hole fluctuations. Comparison of our results with Quantum-Monte Carlo (QMC) calculations at relatively high temperatures () suggests to introduce a temperature renormalization in order to improve the agreement between the two methods at intermediate and large values of the interaction . We evaluate the temperature dependence of the spin-lattice relaxation time and of the spin-echo decay time and compare it with the results of NMR measurements on an underdoped and an optimally doped \YBCO sample. For it is possible to consistently adjust the parameters of the Hubbard model in order to have a good {\it semi-quantitative} description of this temperature dependence for temperatures larger than the spin gap as obtained from NMR measurements. We also discuss the case , which is more appropriate to describe magnetic and single-particle properties close to half-filling. However, for this larger value of the agreement with QMC as well as with experiments at finite doping is less satisfactory.
Final version, to appear in Phys. Rev. B (sched. Feb. 99)