Diagrammatics in the Dual Space, or There and Back Again
Evgeny A. Stepanov

TL;DR
This paper develops a systematic dual-space framework to better describe many-body effects in multi-orbital systems, bridging ab initio methods and strong correlation models for realistic materials.
Contribution
It introduces the dual approach to strong correlations, unifying perturbative expansions in a transformed dual space for improved modeling of electronic materials.
Findings
Dual methods are exact in weak and strong coupling limits.
Systematic collection of dual techniques developed to date.
Framework bridges ab initio and strongly correlated models.
Abstract
Accurately describing many-body effects in multi-orbital systems remains a major challenge in theoretical condensed matter physics. At present, there is a significant methodological gap between the numerical tools used in ab initio computational materials science and those developed to study strong electronic correlations. The former can treat realistic, large-scale systems but typically neglect many-body effects, while the latter focus on simplified models with only a few degrees of freedom, as only such models can be solved accurately in the presence of strong interactions. The purpose of this thesis is to bridge these two approaches and establish a systematic theoretical framework for realistic correlated electronic materials. This involves a full-cycle methodology that begins with constructing ab initio interacting models from density-functional theory, solving them using dynamical…
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Taxonomy
TopicsAdvanced Physical and Chemical Molecular Interactions · Physics of Superconductivity and Magnetism · Chemical and Physical Properties of Materials
