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Derivative Discontinuity in Many-Body Perturbation Theory and Chemical Potentials in Random Phase Approximation

Chemical Physics 2026-03-20 v1

Abstract

We derive analytical expressions for chemical potentials within the random phase approximation (RPA), equivalently the GWGW energy functional evaluated using non interacting Green's functions (GsG_s). The chemical potential is obtained using two formally equivalent approaches: a direct derivative of the total energy with respect to particle number, and a functional derivative via the chain rule through GsG_s, both validated with finite difference benchmarks. We show that the functional derivative of the GWGW correlation energy\unicodex2013\unicode{x2013}i.e., the GWGW correlation self energy\unicodex2013\unicode{x2013}exhibits a discontinuity at integer particle numbers with finite jumps. This resolves the apparent inconsistency between accurate GWGW quasiparticle energies and the large delocalization errors observed in RPA total energies, as standard GWGW self energies neglect this nonanalytic behavior. Our results suggest that derivative discontinuities are a fundamental feature of correlation energy functionals, analogous to the known discontinuity in the exact exchange correlation energy.

Keywords

Cite

@article{arxiv.2603.19112,
  title  = {Derivative Discontinuity in Many-Body Perturbation Theory and Chemical Potentials in Random Phase Approximation},
  author = {Jiachen Li and Weitao Yang},
  journal= {arXiv preprint arXiv:2603.19112},
  year   = {2026}
}