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arXiv · cond-mat/0208451

Wave function statistics and multifractality at the spin quantum Hall transition

Abstract

The statistical properties of wave functions at the critical point of the spin quantum Hall transition are studied. The main emphasis is put onto determination of the spectrum of multifractal exponents $Δ_q$ governing the scaling of moments $<|ψ|^{2q}>\sim L^{-qd-Δ_q}$ with the system size $L$ and the spatial decay of wave function correlations. Two- and three-point correlation functions are calculated analytically by means of mapping onto the classical percolation, yielding the values $Δ_2=-1/4$ and $Δ_3=-3/4$. The multifractality spectrum obtained from numerical simulations is given with a good accuracy by the parabolic approximation $Δ_q\simeq q(1-q)/8$ but shows detectable deviations. We also study statistics of the two-point conductance $g$, in particular, the spectrum of exponents $X_q$ characterizing the scaling of the moments $ $. Relations between the spectra of critical exponents of wave functions ($Δ_q$), conductances ($X_q$), and Green functions at the localization transition with a critical density of states are discussed.

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BibTeXRIS

A. D. Mirlin, F. Evers, A. Mildenberger. 2002-08-23. Wave function statistics and multifractality at the spin quantum Hall transition. https://doi.org/10.1088/0305-4470%2F36%2F12%2F323

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