79 research outputs found

    High Frequency Conductivity in the Quantum Hall Regime

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    We have measured the complex conductivity σxx\sigma_{xx} of a two-dimensional electron system in the quantum Hall regime up to frequencies of 6 GHz at electron temperatures below 100 mK. Using both its imaginary and real part we show that σxx\sigma_{xx} can be scaled to a single function for different frequencies and for all investigated transitions between plateaus in the quantum Hall effect. Additionally, the conductivity in the variable-range hopping regime is used for a direct evaluation of the localization length ξ\xi. Even for large filing factor distances δν\delta \nu from the critical point we find ξδνγ\xi \propto \delta \nu^{-\gamma} with a scaling exponent γ=2.3\gamma=2.3

    Hopping conductivity in the quantum Hall effect -- revival of universal scaling

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    We have measured the temperature dependence of the conductivity σxx\sigma_{xx} of a two-dimensional electron system deep into the localized regime of the quantum Hall plateau transition. Using variable-range hopping theory we are able to extract directly the localization length ξ\xi from this experiment. We use our results to study the scaling behavior of ξ\xi as a function of the filling factor distance δν|\delta \nu| to the critical point of the transition. We find for all samples a power-law behavior ξδνγ\xi\propto|\delta\nu|^{-\gamma} with a universal scaling exponent γ=2.3\gamma = 2.3 as proposed theoretically

    Conductance fluctuations at the quantum Hall plateau transition

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    We analyze the conductance fluctuations observed in the quantum Hall regime for a bulk two-dimensional electron system in a Corbino geometry. We find that characteristics like the power spectral density and the temperature dependence agree well with simple expectations for universal conductance fluctuations in metals, while the observed amplitude is reduced. In addition, the dephasing length LΦT1/2L_\Phi \propto T^{-1/2}, which governs the temperature dependence of the fluctuations, is surprisingly different from the scaling length LscT1L_{sc}\propto T^{-1} governing the width of the quantum Hall plateau transition

    Bimodal Counting Statistics in Single Electron Tunneling through a Quantum Dot

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    We explore the full counting statistics of single electron tunneling through a quantum dot using a quantum point contact as non-invasive high bandwidth charge detector. The distribution of counted tunneling events is measured as a function of gate and source-drain-voltage for several consecutive electron numbers on the quantum dot. For certain configurations we observe super-Poissonian statistics for bias voltages at which excited states become accessible. The associated counting distributions interestingly show a bimodal characteristic. Analyzing the time dependence of the number of electron counts we relate this to a slow switching between different electron configurations on the quantum dot

    Noise at a Fermi-edge singularity

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    We present noise measurements of self-assembled InAs quantum dots at high magnetic fields. In comparison to I-V characteristics at zero magnetic field we notice a strong current overshoot which is due to a Fermi-edge singularity. We observe an enhanced suppression in the shot noise power simultaneous to the current overshoot which is attributed to the electron-electron interaction in the Fermi-edge singularity

    Direct Measurement of the g-Factor of Composite Fermions

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    The activation gap Δ\Delta of the fractional quantum Hall states at constant fillings ν=2/3\nu =2/3 and 2/5 has been measured as a function of the perpendicular magnetic field BB. A linear dependence of Δ\Delta on BB is observed while approaching the spin polarization transition. This feature allows a direct measurement of the gg-factor of composite fermions which appears to be heavily renormalized by interactions and strongly sensitive to the electronic filling factor.Comment: 4 pages, 4 figures Changed content: Fokus more on g-factors (and less on other details

    Noise enhancement due to quantum coherence in coupled quantum dots

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    We show that the intriguing observation of noise enhancement in the charge transport through two vertically coupled quantum dots can be explained by the interplay of quantum coherence and strong Coulomb blockade. We demonstrate that this novel mechanism for super-Poissonian charge transfer is very sensitive to decoherence caused by electron-phonon scattering as inferred from the measured temperature dependence.Comment: 4 pages, 3 figures, corrected version (Figs.2 and 3

    Dynamical scaling of the quantum Hall plateau transition

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    Using different experimental techniques we examine the dynamical scaling of the quantum Hall plateau transition in a frequency range f = 0.1-55 GHz. We present a scheme that allows for a simultaneous scaling analysis of these experiments and all other data in literature. We observe a universal scaling function with an exponent kappa = 0.5 +/- 0.1, yielding a dynamical exponent z = 0.9 +/- 0.2.Comment: v2: Length shortened to fulfil Journal criteri
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