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Nanotechnologies for Efficient Solar and Wind Energy Harvesting and Storage

机译:高效利用太阳能和风能的纳米技术

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We describe nanotechnologies used to improve the efficient harvest of energy from the Sun and the wind, and the efficient storage of energy in secondary batteries and ultracapacitors, for use in a variety of applications including smart grids, electric vehicles, and portable electronics.rnWe demonstrate high-quality nanostructured copper indium gallium selenide (CIGS) thin films for photovoltaic (PV) applications. The self-assembly of nanoscale p-n junction networks creates n-type networks that act as preferential electron pathways, and p-type networks that act as preferential hole pathways, allowing positive and negative charges to travel to the contacts in physically separated paths, reducing charge recombination. We also describe PV nanotechnologies used to enhance light trapping, photon absorption, charge generation, charge transport, and current collection.rnFurthermore, we describe nanotechnologies used to improve the efficiency of power-generating wind turbines. These technologies include nanoparticle-containing lubricants that reduce the friction generated from the rotation of the turbines, nanocoatings for de-icing and self-cleaning technologies, and advanced nanocomposites that provide lighter and stronger wind blades.rnFinally, we describe nanotechnologies used in advanced secondary batteries and ultracapacitors. Nanostructured powder-based and carbon-nanotube-based cathodes and anodes with ultra-high surface areas boost the energy and power densities in secondary batteries, including lithium-ion and sodium-sulfur batteries. Nanostructured carbon materials are also controlled on a molecular level to offer large surface areas for the electrodes of ultracapacitors, allowing to store and supply large bursts of energy needed in some applications.
机译:我们描述了用于改善从太阳和风中有效收集能量以及将能量有效存储在二次电池和超级电容器中的纳米技术,这些技术可用于智能电网,电动汽车和便携式电子产品等各种应用中。用于光伏(PV)应用的高质量纳米结构硒化铜铟镓(CIGS)薄膜。纳米级pn结网络的自组装可创建充当优先电子路径的n型网络和充当优先空穴路径的p型网络,从而允许正电荷和负电荷以物理上分开的路径传播到触点,从而减少电荷重组。我们还描述了用于增强光捕获,光子吸收,电荷产生,电荷传输和电流收集的PV纳米技术。此外,我们还描述了用于提高发电风力涡轮机效率的纳米技术。这些技术包括减少涡轮旋转产生的摩擦的含纳米颗粒的润滑剂,用于除冰和自清洁技术的纳米涂层以及提供更轻和更坚固的风叶片的先进纳米复合材料。最后,我们描述了用于高级二次加工的纳米技术电池和超级电容器。具有超高表面积的纳米结构粉末基和碳纳米管基阴极和阳极可提高包括锂离子和钠硫电池在内的二次电池的能量和功率密度。纳米结构的碳材料还可以在分子水平上得到控制,从而为超级电容器的电极提供较大的表面积,从而可以存储和提供某些应用中所需的大量能量。

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