Quantum Boltzmann equation of composite fermions interacting with a gauge field

Yong Baek Kim, Patrick A. Lee, and Xiao-Gang Wen
Phys. Rev. B 52, 17275 – Published 15 December 1995
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Abstract

We derive the quantum Boltzmann equation (QBE) of composite fermions at/near the ν=1/2 state using the nonequilibrium Green’s-function technique. The lowest-order perturbative correction to the self-energy due to the strong gauge-field fluctuations suggests that there is no well-defined Landau quasiparticle. Therefore, we cannot assume the existence of the Landau quasiparticles a priori in the derivation of the QBE. Using an alternative formulation, we derive the QBE for the generalized Fermi-surface displacement which corresponds to the local variation of the chemical potential in momentum space. From this QBE, one can understand in a unified fashion the Fermi-liquid behaviors of the density-density and the current-current correlation functions at ν=1/2 (in the long-wavelength and the low-frequency limits) and the singular behavior of the energy gap obtained from the finite-temperature activation behavior of the compressibility near ν=1/2. Implications of these results for recent experiments are also discussed.

  • Received 20 April 1995

DOI:https://doi.org/10.1103/PhysRevB.52.17275

©1995 American Physical Society

Authors & Affiliations

Yong Baek Kim, Patrick A. Lee, and Xiao-Gang Wen

  • Department of Physics, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139

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Issue

Vol. 52, Iss. 24 — 15 December 1995

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