arXiv · cond-mat/9604005
Phase Coherence in a Random One-Dimensional System of Interacting Fermions: A Density Matrix Renormalization Group Study
Abstract
Using the density matrix renormalization group algorithm, we study the model of spinless fermions with nearest-neighbor interaction on a ring in the presence of disorder. We determine the spatial decay of the density induced by a defect (Friedel oscillations), and the phase sensitivity of the ground state energy $\DE= (-)^{N} (E(ϕ=0) - E(ϕ=π))$, where $ϕ= 2πΦ/Φ_0$ ($N$ is the number of fermions, $Φ$ the magnetic flux, and $Φ_0=h/e$ the flux quantum), for a disordered system versus the system size $M$. The quantity $\ln{(M \DE)}$ is found to have a normal distribution to a good approximation. The ``localization length'' decreases (increases) for a repulsive (attractive) interaction.
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P. Schmitteckert, U. Eckern. 1996-04-01. Phase Coherence in a Random One-Dimensional System of Interacting Fermions: A Density Matrix Renormalization Group Study. https://doi.org/10.1103/physrevb.53.15397
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