4.6 Article

Efficient fluctuation-exchange approach to low-temperature spin fluctuations and superconductivity: From the Hubbard model to NaxCoO2 • yH2O

期刊

PHYSICAL REVIEW B
卷 103, 期 20, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.103.205148

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资金

  1. Deutsche Forschungsgemeinschaft (DFG) [RTG 2247 (QM3), 286518848]
  2. European Commission via the Graphene Flagship Core Project 3 - Central Research Development Fund of the University of Bremen [881603]

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In this study, the FLEX + IR approach was used to investigate superconductivity mediated by spin fluctuations in multiorbital systems, achieving temperatures on the order of 10(-4) in units of the electronic bandwidth. After benchmarking the method in the repulsive Hubbard model on a square lattice, the possibility of spin-fluctuation-mediated superconductivity in NaxCoO2•yH(2)O reaching the experimental transition temperature of Tc = 4.5K and below was explored.
Superconductivity arises mostly at energy and temperature scales that are much smaller than the typical bare electronic energies. Since the computational effort of diagrammatic many-body techniques increases with the number of required Matsubara frequencies and thus with the inverse temperature, phase transitions that occur at low temperatures are typically hard to address numerically. In this work, we implement a fluctuation exchange (FLEX) approach to spin fluctuations and superconductivity using the intermediate representation basis (IR) [Shinaoka et al., Phys. Rev. B 96, 035147 (2017)] for Matsubara Green functions. This FLEX + IR approach is numerically very efficient and enables us to reach temperatures on the order of 10(-4) in units of the electronic bandwidth in multiorbital systems. After benchmarking the method in the doped repulsive Hubbard model on the square lattice, we study the possibility of spin-fluctuation-mediated superconductivity in the hydrated sodium cobalt material NaxCoO2 center dot yH(2)O reaching the scale of the experimental transition temperature T-c = 4.5K and below.

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