paper

Microscopic derivation of the stationary Chern-Simons-Schrödinger equation for almost-bosonic anyons

arXiv:2504.17488

Abstract

In this work we consider the -body Hamiltonian describing the microscopic structure of a quantum gas of almost-bosonic anyons. This description includes both extended magnetic flux and spin-orbit/soft-disk interaction between the particles which are confined in a scalar trapping potential. We study a physically well-motivated ansatz for a sequence of trial states, consisting of Jastrow repulsive short-range correlations and a condensate, with sufficient variational freedom to approximate the ground state (and possibly also low-energy excited states) of the gas. In the limit , while taking the relative size of the anyons to zero and the total magnetic flux to remain finite, we rigorously derive the stationary Chern-Simons-Schrödinger/average-field-Pauli effective energy density functional for the condensate wave function. This includes a scalar self-interaction parameter which depends both on , the diluteness of the gas, and the spin-orbit coupling strength , but becomes independent of these microscopic details for a particular value of the coupling in which supersymmetry is exhibited (on all scales, both microscopic and mesoscopic) with . Our findings confirm and clarify the predictions we have found in the physics literature.

55 pages, 1 figure