Normal state properties of quantum-critical metals at finite temperatures
ORAL
Abstract
Recent years have seen an intense effort to study models of fermionic quantum criticality and superconductivity via sign-problem-free quantum Monte Carlo. These studies found a number of puzzling features, which are in qualitative disagreement with quantum-critical-scaling theories and, in particular, cast doubt on the validity of Eliashberg-type approaches to quantum criticality. I will discuss how thermal fluctuations destroy the nice scaling properties of quantum-critical systems and show that after generalizing Eliashberg theory to account for thermal fluctuations many of the disagreements vanish. This work provides concrete guidelines for analyzing ongoing numerical work.
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Presenters
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Avraham Klein
Ariel University, University of Minnesota
Authors
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Avraham Klein
Ariel University, University of Minnesota
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Yoni Schattner
Stanford University, Department of Physics, Stanford University
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Erez Berg
Weizmann Institute of Science, Department of Condensed Matter Physics, Weizmann Institute of Science
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Andrey Chubukov
University of Minnesota, University of Florida, Physics, University of Minnesota