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Ultra-Lightweight Hybrid Thin-Film Solar Cells: A Survey of Enabling Technologies for Space Power Applications

机译:超轻型混合薄膜太阳能电池:航天电源应用的支持技术概览

摘要

The development of hybrid inorganic/organic thin-film solar cells on flexible, lightweight, space-qualified, durable substrates provides an attractive solution for fabricating solar arrays with high mass specific power (W/kg). Next generation thin-film technologies may well involve a revolutionary change in materials to organic-based devices. The high-volume, low-cost fabrication potential of organic cells will allow for square miles of solar cell production at one-tenth the cost of conventional inorganic materials. Plastic solar cells take a minimum of storage space and can be inflated or unrolled for deployment. We will explore a cross-section of in-house and sponsored research efforts that aim to provide new hybrid technologies that include both inorganic and polymer materials as active and substrate materials. Research at University of Texas at Arlington focuses on the fabrication and use of poly(isothianaphthene-3,6-diyl) in solar cells. We describe efforts at Norfolk State University to design, synthesize and characterize block copolymers. A collaborative team between EIC Laboratories, Inc. and the University of Florida is investigating multijunction polymer solar cells to more effectively utilize solar radiation. The National Aeronautics and Space Administration (NASA)/Ohio Aerospace Institute (OAI) group has undertaken a thermal analysis of potential metallized substrates as well as production of nanoparticles of CuInS2 and CuInSe2 in good yield at moderate temperatures via decomposition of single-source precursors. Finally, preliminary work at the Rochester Institute of Technology (R.I.T.) to assess the impact on performance of solar cells of temperature and carbon nanotubes is reported. Technologies that must be developed to enable ultra-lightweight solar arrays include: monolithic interconnects, lightweight array structures, and new ultra-light support and deployment mechanisms. For NASA applications, any solar cell or array technology must not only meet weight and AMO efficiency goals, but also must be durable enough to survive launch conditions and space environments.
机译:在柔性,轻量,符合空间要求的耐用基板上开发混合无机/有机薄膜太阳能电池,为制造高质量比功率(W / kg)的太阳能电池阵列提供了有吸引力的解决方案。下一代薄膜技术很可能会涉及材料向有机基设备的革命性变化。有机电池的大批量,低成本制造潜力将使平方英里的太阳能电池生产成为传统无机材料成本的十分之一。塑料太阳能电池占用的存储空间最少,可以充气或展开以进行部署。我们将探索内部研究和赞助研究的横截面,旨在提供包括无机和聚合物材料作为活性材料和基材的新型混合技术。德克萨斯大学阿灵顿分校的研究重点在于太阳能电池中聚(异亚锡菲林3,6-二基)的制造和使用。我们描述了诺福克州立大学在设计,合成和表征嵌段共聚物方面所做的努力。 EIC Laboratories,Inc.和佛罗里达大学之间的合作团队正在研究多结聚合物太阳能电池,以更有效地利用太阳辐射。美国国家航空航天局(NASA)/俄亥俄州航空航天研究所(OAI)小组已经对潜在的金属化基质进行了热分析,并通过单源前体的分解在中等温度下以高收率生产了CuInS2和CuInSe2纳米颗粒。最后,报告了罗彻斯特理工学院(R.I.T.)的初步工作,以评估温度和碳纳米管对太阳能电池性能的影响。为实现超轻型太阳能电池阵列而必须开发的技术包括:单片互连,轻型阵列结构以及新的超轻型支持和部署机制。对于NASA应用,任何太阳能电池或阵列技术不仅必须满足重量和AMO效率目标,而且还必须足够耐用以承受发射条件和太空环境。

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