Ground-state properties of the disordered Hubbard model in two dimensions
Maria Elisabetta Pezzoli, Federico Becca

TL;DR
This study investigates the ground-state properties of the disordered two-dimensional Hubbard model, revealing a direct Anderson-Mott transition and the emergence of a glassy phase due to frustration, with no evidence of a metallic state.
Contribution
The paper introduces an improved variational wave function to analyze the Anderson-Mott transition and explores the effects of frustration on the phase diagram in detail.
Findings
Direct second-order Anderson-Mott transition in the paramagnetic sector.
Local magnetic moments form and order before the Mott transition when magnetism is allowed.
Frustrating next-nearest-neighbor hopping leads to a glassy phase at strong couplings.
Abstract
We study the interplay between electron correlation and disorder in the two-dimensional Hubbard model at half-filling by means of a variational wave function that can interpolate between Anderson and Mott insulators. We give a detailed description of our improved variational state and explain how the physics of the Anderson-Mott transition can be inferred from equal-time correlations functions, which can be easily computed within the variational Monte Carlo scheme. The ground-state phase diagram is worked out in both the paramagnetic and the magnetic sector. Whereas in the former a direct second-order Anderson-Mott transition is obtained, when magnetism is allowed variationally, we find evidence for the formation of local magnetic moments that order before the Mott transition. Although the localization length increases before the Mott transition, we have no evidence for the…
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