5,956 research outputs found

    Capacitively-coupled rf discharge with a large amount of microparticles: spatiotemporal emission pattern and microparticle arrangement

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    The effect of micron-sized particles on a low-pressure capacitively-coupled rf discharge is studied both experimentally and using numerical simulations. In the laboratory experiments, microparticle clouds occupying a considerable fraction of the discharge volume are supported against gravity with the help of the thermophoretic force. The spatiotemporally resolved optical emission measurements are performed with different arrangements of microparticles. The numerical simulations are carried out on the basis of a one-dimensional hybrid (fluid-kinetic) discharge model describing the interaction between plasma and microparticles in a self-consistent way. The study is focused on the role of microparticle arrangement in interpreting the spatiotemporal emission measurements. We show that it is not possible to reproduce simultaneously the observed microparticle arrangement and emission pattern in the framework of the considered one-dimensional model. This disagreement is discussed and attributed to two-dimensional effects, e.g., radial diffusion of the plasma components

    Electron spin relaxation in carbon nanotubes

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    The long standing problem of inexplicably short spin relaxation in carbon nanotubes (CNTs) is examined. The curvature-mediated spin-orbital interaction is shown to induce fluctuating electron spin precession causing efficient relaxation in a manner analogous to the Dyakonov-Perel mechanism. Our calculation estimates longitudinal (spin-flip) and transversal (decoherence) relaxation times as short as 150 ps and 110 ps at room temperature, respectively, along with a pronounced anisotropic dependence. Interference of electrons originating from different valleys can lead to even faster dephasing. The results can help clarify the measured data, resolving discrepancies in the literature.Comment: 9 pages, 3 figure

    Search for solar axions produced by Compton process and bremsstrahlung using the resonant absorption and axioelectric effect

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    The search for resonant absorption of Compton and bremsstrahlung solar axions by 169^{169}Tm nuclei have been performed. Such an absorption should lead to the excitation of low-lying nuclear energy level: A+169A+^{169}Tm →169\rightarrow ^{169}Tm∗^* →169\rightarrow ^{169}Tm +γ+ \gamma (8.41 keV). Additionally the axio-electric effect in silicon atoms is sought. The axions are detected using a Si(Li) detectors placed in a low-background setup. As a result, a new model independent restrictions on the axion-electron and the axion-nucleon coupling: gAe×∣gAN0+gAN3∣≤2.1×10−14g_{Ae}\times|g^0_{AN}+ g^3_{AN}|\leq 2.1\times10^{-14} and the axion-electron coupling constant: ∣gAe∣≤2.2×10−10|g_{Ae}| \leq 2.2\times 10^{-10} has been obtained. The limits leads to the bounds mA≤m_{A}\leq 7.9 eV and mA≤m_{A}\leq 1.3 keV for the mass of the axion in the DFSZ and KSVZ models, respectively (90%90\% C.L.).Comment: 6 pages, 3 figures, contributed to the 9th Patras Workshop on Axions, WIMPs and WISPs, Mainz, June 24-28, 201

    Pioneer settlement of the cold-water coral Desmophyllum dianthus (Esper, 1794) on plastic

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    Larval settlement is a critical step for sessile benthic species such as corals, whose ability to thrive on diverse natural and anthropogenic substrates may lead to a competitive advantage in the colonization of new environments with respect to a narrow tolerance for a specific kind of substratum. Plastic debris, widespread in marine waters, provides a large, motile, and solid substratum supporting a highly diverse biological community. Here we present the first observation of a floating plastic bottle colonized by the deep-sea coral Desmophyllum dianthus. The density pattern and co-occurring species composition suggest a pioneer behavior of this coral species, whose peculiar morphologic plasticity response when interacting with the plastic substrate (i.e., low density polyethylene) has not been observed before. The tolerance of D. dianthus for such plastic substrate may affect ecological processes in deep water environments, disrupting interspecific substrate competition in the benthic community
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