5 research outputs found

    Phononic loss in superconducting resonators on piezoelectric substrates

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    We numerically and experimentally investigate the phononic loss for superconducting resonators fabricated on a piezoelectric substrate. With the help of finite element method simulations, we calculate the energy loss due to electromechanical conversion into bulk and surface acoustic waves. This sets an upper limit for the resonator internal quality factor QiQ_i. To validate the simulation, we fabricate quarter wavelength coplanar waveguide resonators on GaAs and measure QiQ_i as function of frequency, power and temperature. We observe a linear increase of QiQ_i with frequency, as predicted by the simulations for a constant electromechanical coupling. Additionally, QiQ_i shows a weak power dependence and a negligible temperature dependence around 10\,mK, excluding two level systems and non-equilibrium quasiparticles as the main source of losses at that temperature

    Towards hybrid circuit quantum electrodynamics with quantum dots

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    Cavity quantum electrodynamics allows one to study the interaction between light and matter at the most elementary level. The methods developed in this field have taught us how to probe and manipulate individual quantum systems like atoms and superconducting quantum bits with an exquisite accuracy. There is now a strong effort to extend further these methods to other quantum systems, and in particular hybrid quantum dot circuits. This could turn out to be instrumental for a noninvasive study of quantum dot circuits and a realization of scalable spin quantum bit architectures. It could also provide an interesting platform for quantum simulation of simple fermion-boson condensed matter systems. In this short review, we discuss the experimental state of the art for hybrid circuit quantum electrodynamics with quantum dots, and we present a simple theoretical modeling of experiments.Comment: Minor differences with published versio

    Erratum to: Guidelines for the use and interpretation of assays for monitoring autophagy (3rd edition) (Autophagy, 12, 1, 1-222, 10.1080/15548627.2015.1100356

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    Guidelines for the use and interpretation of assays for monitoring autophagy (3rd edition)

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