Magneto-roton theory of collective excitations in the fractional quantum Hall effect
- 15 February 1986
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 33 (4) , 2481-2494
- https://doi.org/10.1103/physrevb.33.2481
Abstract
We present a theory of the collective excitation spectrum in the fractional quantum Hall effect which is closely analogous to Feynman’s theory of superfluid helium. The predicted spectrum has a large gap at k=0 and a deep magneto-roton minimum at finite wave vector, in excellent quantitative agreement with recent numerical calculations. We demonstrate that the magneto-roton minimum is a precursor to the gap collapse associated with the Wigner crystal instability occurring near ν=(1/7). In addition to providing a simple physical picture of the collective excitation modes, this theory allows one to compute rather easily and accurately experimentally relevant quantities such as the susceptibility and the ac conductivity.Keywords
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