paper

Exploring the nature of the emergent gauge field in composite-fermion metals: A large-scale microscopic study

arXiv:2509.07151 · doi:10.1103/cjys-fx46

Abstract

Field theories of the composite-fermion (CF) metal model it as a Fermi sea of composite fermions coupled to an emergent gauge field. Within a random phase approximation, these theories predict that the Landau damping of the gauge field resulting from its coupling to the low-energy, long-wavelength CF particle-hole excitations modifies the electrons' density-density correlation function related to the static structure factor at wave vector . This produces a non-analytic correction to (with the magnetic length ). Thanks to the recently developed quaternion formulation for Jain-Kamilla projection of CF wave functions, the evaluation of from the accurate microscopic theory of composite fermions has now become possible for systems containing as many as CFs, which enables a reliable determination of the small- behavior of . We study CF metals corresponding to electrons at Landau level filling factors and , and for completeness, also of bosons at and . In the limit, our microscopic calculation reveals a term in of the CF metals rather than . This behavior is well-predicted by a model of a non-interacting Fermi sea of dipolar CFs, which also obtains its coefficient accurately.

Main: 5 pages + 1 fig. SM: 5 pages + 3 figs. We welcome all comments