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Semiconductor Nanostructures for Antireflection Coatings, Transparent Contacts, Junctionless Thermoelectrics and Li-ion Batteries

机译:半导体纳米结构,用于抗反射涂层,透明触点,无结热电器件和锂离子电池

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摘要

Porous semiconductors structured top-down by electrochemical means, and from bottom-up growth of arrays and arrangements of nanoscale structures, are shown to be amenable to a range of useful thermal, optical, electrical and electrochemical properties. This paper summarises recent investigations of the electrochemical, electrical, optical, thermal and structural properties of porous semiconductors such as Si, In_2O_3, SnO_2 and ITO, and dispersiohs, arrays and arrangements of nanoscale structures of each of these materials. We summarize the property-inspired application of such structurally engineered arrangements and morphologies of these materials for antireflection coatings, broadband absorbers, transparent contacts to LEDs that improve transmission, electrical contact and external quantum efficiency. Additionally the possibility of thermoelectric performance through structure-mediated variation in thermal resistance and phonon scattering without a p-n junction is shown through phonon engineering in roughened nanowires. Lastly, we show that bulk crystals and nanowires of p- and n-type doped Si are promising for use as anodes in Li-ion batteries.
机译:多孔半导体通过电化学方法自上而下结构化,并自下而上地从阵列的生长和纳米级结构的排列中显示出,其可适应一系列有用的热,光学,电和电化学性质。本文总结了对多孔半导体(如Si,In_2O_3,SnO_2和ITO)的电化学,电学,光学,热学和结构性质的最新研究,以及每种材料的纳米级结构的分散,排列和排列。我们总结了此类材料的结构工程安排和形态在性能方面的启发,用于减反射涂层,宽带吸收器,LED的透明触点,从而改善了透射率,电接触和外部量子效率。另外,通过粗糙化的纳米线中的声子工程,显示了通过结构介导的热阻变化和无p-n结的声子散射产生热电性能的可能性。最后,我们证明p型和n型掺杂Si的块状晶体和纳米线有望用作锂离子电池的阳极。

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    Department of Chemistry, University College Cork, Cork, Ireland,Micro- andNanoelectronics Centre, Tyndall National Institute, Lee Malt ings, Cork, Ireland;

    Department of Chemistry, University College Cork, Cork, Ireland;

    Department of Chemistry, University College Cork, Cork, Ireland,Department of Physics Energy, University of Limerick, Limerick, Ireland;

    Materials Chemistry and Analysis Group, Department of Chemistry University College Cork, Cork, Ireland;

    Department of Physics Energy, University of Limerick, Limerick, Ireland;

    Department of Chemistry, University College Cork, Cork, Ireland,Micro- andNanoelectronics Centre, Tyndall National Institute, Lee Malt ings, Cork, Ireland;

    Institute for Materials Science, Christian-Albrechts Universitaet, Kiel, Germany;

    Micro- andNanoelectronics Centre, Tyndall National Institute, Lee Malt ings, Cork, Ireland,Materials Chemistry and Analysis Group, Department of Chemistry University College Cork, Cork, Ireland,Centre for Research on Adaptive Nanostructures and Nanodevices (CRANN), Trinity College Dublin, Dublin 2, Ireland;

    Department of Chemistry, University College Cork, Cork, Ireland,Micro- andNanoelectronics Centre, Tyndall National Institute, Lee Malt ings, Cork, Ireland,Materials and Surface Science Institute, University of Limerick, Limerick, Ireland;

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