Renormalized Bogoliubov theory for the Nelson model

  • Marco Falconi

    Politecnico di Milano, Italy
  • Jonas Lampart

    CNRS & Université Bourgogne Europe, Dijon, France
  • Nikolai Leopold

    Constructor University, Bremen, Germany; University of Basel, Switzerland
  • David Mitrouskas

    Institute of Science and Technology Austria (ISTA), Klosterneuburg, Austria
Renormalized Bogoliubov theory for the Nelson model cover
Download PDF

This article is published open access under our Subscribe to Open model.

Abstract

We consider the time evolution of the renormalized Nelson model, which describes bosons linearly coupled to a quantized scalar field, in the mean-field limit of many particles with coupling constant proportional to . First, we show that initial states exhibiting Bose–Einstein condensation for the particles and approximating a coherent state for the quantum field retain their structure under the many-body time evolution. Concretely, the dynamics of the reduced densities are approximated by solutions of two coupled PDEs, the Schrödinger–Klein–Gordon equations. Second, we construct a renormalized Bogoliubov evolution that describes the quantum fluctuations around the Schrödinger–Klein–Gordon equations. This evolution is used to extend the approximation of the evolved many-body state to the full norm topology. In summary, we provide a comprehensive analysis of the Nelson model that reveals the role of renormalization in the mean-field Bogoliubov theory.

Cite this article

Marco Falconi, Jonas Lampart, Nikolai Leopold, David Mitrouskas, Renormalized Bogoliubov theory for the Nelson model. Ann. Inst. H. Poincaré Anal. Non Linéaire 43 (2026), no. 4, pp. 927–1001

DOI 10.4171/AIHPC/154