1,121 research outputs found

    Characterisation and optimisation of PECVD SiNx as an antireflection coating and passivation layer for silicon solar cells

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    In this work, we investigate how the film properties of silicon nitride (SiNx) depend on its deposition conditions when formed by plasma enhanced chemical vapour deposition (PECVD). The examination is conducted with a Roth & Rau AK400 PECVD reactor, where the varied parameters are deposition temperature, pressure, gas flow ratio, total gas flow, microwave plasma power and radio-frequency bias voltage. The films are evaluated by Fourier transform infrared spectroscopy to determine structural properties, by spectrophotometry to determine optical properties, and by capacitance–voltage and photoconductance measurements to determine electronic properties. After reporting on the dependence of SiNx properties on deposition parameters, we determine the optimized deposition conditions that attain low absorption and low recombination. On the basis of SiNx growth models proposed in the literature and of our experimental results, we discuss how each process parameter affects the deposition rate and chemical bond density. We then focus on the effective surface recombination velocity S eff, which is of primary importance to solar cells. We find that for the SiNx prepared in this work, 1) S eff does not correlate universally with the bulk structural and optical properties such as chemical bond densities and refractive index, and 2) S eff depends primarily on the defect density at the SiNx-Si interface rather than the insulator charge. Finally, employing the optimized deposition condition, we achieve a relatively constant and low S eff,UL on low-resistivity (≤1.1 Ωcm) p- and n-type c-Si substrates over a broad range of n = 1.85–4.07. The results of this study demonstrate that the trade-off between optical transmission and surface passivation can be circumvented. Although we focus on photovoltaic applications, this study may be useful for any device for which it is desirable to maximize light transmission and surface passivation.This work was supported by an Australian Research Council Linkage between The Australian National University and Braggone Oy under Grant LP0989593

    Doctrine of the Protection of Nationals Abroad: Rise of the Non-Combatant Evacuation Operation

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    The purpose of this Article is to show that the doctrine of the protection of nationals abroad exists within the right of self-defense; with contours of the doctrine shaped in recent years by the practice of states in their conduct of NEO. This right is limited to the removal of the intervening state‘s citizens abroad through the use of force subject to necessity and proportionality in order to move the foreign nationals to a safe location, Part II discusses the origin of the doctrine of protection of nationals abroad and the legal bases that have been used to justify that protection. It also considers the impact of the misuse of the doctrine throughout its evolution. This explanation includes the claim that the protection of nationals abroad does not impugn Article 2(4) of the U.N. Charter which prohibits a state‘s use of force against another state and the justification that the protection of nationals is an exercise of the right of self-defense which complies with a state‘s right of self-defense enshrined in Article 51 of the UN Charter. It assesses the doctrine‘s place in self-defense at customary international law. Furthermore, this Article reviews state practice and the debate that has ensued among states and academics when states have asserted the doctrine to justify their use of force abroad. This Article also assesses the difficulties in determining the legality of the doctrine based upon the divided opinion of states. Part III surveys the military operational doctrine pertaining to NEO. Part IV assesses the recent invocation of the doctrine by the Russian Federation in its conflict in South Ossetia. Part V provides an analysis of the how NEOs as state practice have acted to limit the extent of protection to nationals abroad. Finally, in Part VI this Article concludes with an assessment of the state of the doctrine in contemporary international law

    Recombination and thin film properties of silicon nitride and amorphous silicon passivated c-Si following ammonia plasma exposure

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    Recombination at silicon nitride (SiNx) and amorphous silicon (a-Si) passivated crystalline silicon (c-Si) surfaces is shown to increase significantly following an ammonia (NH₃) plasma exposure at room temperature. The effect of plasma exposure on chemical structure, refractive index, permittivity, and electronic properties of the thin films is also investigated. It is found that the NH₃ plasma exposure causes (i) an increase in the density of Si≡N₃ groups in both SiNx and a-Si films, (ii) a reduction in refractive index and permittivity, (iii) an increase in the density of defects at the SiNx/c-Si interface, and (iv) a reduction in the density of positive charge in SiNx. The changes in recombination and thin film properties are likely due to an insertion of N–H radicals into the bulk of SiNx or a-Si. It is therefore important for device performance to minimize NH₃ plasma exposure of SiNx or a-Si passivating films during subsequent fabrication steps

    Vibrations of a Columnar Vortex in a Trapped Bose-Einstein Condensate

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    We derive a governing equation for a Kelvin wave supported on a vortex line in a Bose-Einstein condensate, in a rotating cylindrically symmetric parabolic trap. From this solution the Kelvin wave dispersion relation is determined. In the limit of an oblate trap and in the absence of longitudinal trapping our results are consistent with previous work. We show that the derived Kelvin wave dispersion in the general case is in quantitative agreement with numerical calculations of the Bogoliubov spectrum and offer a significant improvement upon previous analytical work.Comment: 5 pages with 1 figur

    Spectrum of turbulent Kelvin-waves cascade in superfluid helium

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    To explain the observed decay of superfluid turbulence at very low temperature, it has been proposed that a cascade of Kelvin waves (analogous to the classical Kolmogorov cascade) transfers kinetic energy to length scales which are small enough that sound can be radiated away. We report results of numerical simulations of the interaction of quantized vortex filaments. We observe the development of the Kelvin-waves cascade, and compute the statistics of the curvature, the amplitude spectrum (which we compare with competing theories) and the fractal dimension.Comment: 32 pages, 22 figure

    Optimizing astrophotonic spatial reformatters using simulated on-sky performance

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    One of the most useful techniques in astronomical instrumentation is image slicing. It enables a spectrograph to have a more compact angular slit, whilst retaining throughput and increasing resolving power. Astrophotonic components like the photonic lanterns and photonic reformatters can be used to replace bulk optics used so far. This study investigates the performance of such devices using end-to-end simulations to approximate realistic on-sky conditions. It investigates existing components, tries to optimize their performance and aims to understand better how best to design instruments to maximize their performance. This work complements the recent work in the field and provides an estimation for the performance of the new components.Comment: Conference proceedings in SPIE 2018 Austin Texa

    Membrane-spanning α-helical barrels as tractable protein-design targets

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    The rational (de novo) design of membrane-spanning proteins lags behind that for water-soluble globular proteins. This is due to gaps in our knowledge of membrane-protein structure, and experimental difficulties in studying such proteins compared to water-soluble counterparts. One limiting factor is the small number of experimentally determined three-dimensional structures for transmembrane proteins. By contrast, many tens of thousands of globular protein structures provide a rich source of ‘scaffolds’ for protein design, and the means to garner sequence-to-structure relationships to guide the design process. The α-helical coiled coil is a protein-structure element found in both globular and membrane proteins, where it cements a variety of helix–helix interactions and helical bundles. Our deep understanding of coiled coils has enabled a large number of successful de novo designs. For one class, the α-helical barrels—that is, symmetric bundles of five or more helices with central accessible channels—there are both water-soluble and membrane-spanning examples. Recent computational designs of water-soluble α-helical barrels with five to seven helices have advanced the design field considerably. Here we identify and classify analogous and more complicated membrane-spanning α-helical barrels from the Protein Data Bank. These provide tantalizing but tractable targets for protein engineering and de novo protein design
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