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Novel Materials, Processing and Device Technologies for Space Exploration with Potential Dual-Use Applications

机译:具有潜在双重用途的太空探索新材料,加工和设备技术

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We highlight results of a broad spectrum of efforts on lower-temperature processing of nanomaterials, novel approaches to energy conversion, and environmentally rugged devices. Solution-processed quantum dots of copper indium chalcogenide semiconductors and multi-walled carbon nanotubes from lower-temperature spray pyrolysis are enabled by novel (precursor) chemistry. Metal-doped zinc oxide (ZnO) nanostructured components of photovoltaic cells have been grown in solution at low temperature on a conductive indium tin oxide substrate. Arrays of ZnO nanorods can be templated and decorated with various semiconductor and metallic nanoparticles. Utilizing ZnO in a more broadly defined energy conversion sense as photocatalysts, unwanted organic waste materials can potentially be re-purposed. Current efforts on charge carrier dynamics in nanoscale electrode architectures used in photoelectrochemical cells for generating solar electricity and fuels are described. The objective is to develop oxide nanowire-based electrode architectures that exhibit improved charge separation, charge collection and allow for efficient light absorption. Investigation of the charge carrier transport and recombination properties of the electrodes will aid in the understanding of how nanowire architectures improve performance of electrodes for dye-sensitized solar cells. Nanomaterials can be incorporated in a number of advanced higher-performance (i.e. mass specific power) photovoltaic arrays. Advanced technologies for the deposition of 4H-silicon carbide are described. The use of novel precursors, advanced processing, and process studies, including modeling are discussed from the perspective of enhancing the performance of this promising material for enabling technologies such as solar electric propulsion. Potential impact(s) of these technologies for a variety of aerospace applications are highlighted throughout. Finally, examples are given of technologies with potential spin-offs for dual-use or terrestrial applications.
机译:我们重点介绍了在纳米材料的低温处理,能量转化的新方法以及对环境坚固的设备方面进行的广泛努力的成果。通过新型(前驱体)化学方法,可以对来自低温喷雾热解的铜铟硫属化物半导体和多壁碳纳米管进行溶液处理的量子点。光伏电池的金属掺杂的氧化锌(ZnO)纳米结构组件已在溶液中于低温下在导电铟锡氧化物衬底上生长。可以对ZnO纳米棒阵列进行模板化,并用各种半导体和金属纳米粒子进行装饰。在更广泛定义的能量转换意义上使用ZnO作为光催化剂,不需要的有机废料有可能被重新利用。描述了在光电化学电池中用于产生太阳能和燃料的纳米级电极结构中对载流子动力学的当前努力。目的是开发基于氧化物纳米线的电极体系结构,该体系结构表现出改善的电荷分离,电荷收集并允许有效的光吸收。对电极的电荷载流子传输和复合性质的研究将有助于理解纳米线结构如何改善染料敏化太阳能电池的电极性能。可以将纳米材料结合到许多先进的高性能(即,按质量比功率)光伏阵列中。描述了用于沉积4H碳化硅的先进技术。从增强这种有前途的材料的性能以实现太阳能推进等技术的角度出发,讨论了新型前驱物的使用,先进的加工工艺以及包括建模在内的工艺研究。这些技术在各种航空航天应用中的潜在影响将在全文中强调。最后,列举了具有潜在附带利益的技术,可用于两用或地面应用。

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