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First-Principles Effective Mass in the Three-Dimensional Uniform Electron Gas

Strongly Correlated Electrons 2026-05-05 v1 Computational Physics

Abstract

The quasiparticle effective mass mm^* of the three-dimensional uniform electron gas (UEG) is a fundamental Fermi-liquid parameter whose value and density dependence have remained controversial for decades. Using renormalized perturbation theory with explicit counterterms, we determine mm^* in the metallic regime (rs6r_s \le 6) from first principles by two complementary routes -- the self-energy and the forward-scattering four-point vertex via the pp-wave spin-symmetric Landau parameter F1sF_1^s -- that agree within uncertainties at each density through sixth renormalized order. The resulting m/mm^*/m remains close to unity throughout the metallic regime, with a shallow non-monotonic density dependence -- a minimum near rs1r_s\approx 1 followed by a gentle upturn -- reflecting the interplay of exchange and dynamical screening in the self-energy, and disfavoring strong monotonic suppression. This finding supports a physical picture for the metallic UEG in which dominant charge correlations are concentrated in nearly forward scattering and generate only a weak F1sF_1^s component.

Keywords

Cite

@article{arxiv.2605.02294,
  title  = {First-Principles Effective Mass in the Three-Dimensional Uniform Electron Gas},
  author = {Pengcheng Hou and Daniel Cerkoney and Zhiyi Li and Tao Wang and Xiansheng Cai and Lei Wang and Gabriel Kotliar and Youjin Deng and Kun Chen},
  journal= {arXiv preprint arXiv:2605.02294},
  year   = {2026}
}
R2 v1 2026-07-01T12:48:05.553Z