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Solution combustion synthesis of metal oxide nanomaterials for energy storage and conversion

机译:溶液燃烧合成金属氧化物纳米材料为能量储存和转换

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摘要

The design and synthesis of metal oxide nanomaterials is one of the key steps for achieving highly efficient energy conversion and storage on an industrial scale. Solution combustion synthesis (SCS) is a time-and energy-saving method as compared with other routes, especially for the preparation of complex oxides which can be easily adapted for scale-up applications. This review summarizes the synthesis of various metal oxide nanomaterials and their applications for energy conversion and storage, including lithium-ion batteries, supercapacitors, hydrogen and methane production, fuel cells and solar cells. In particular, some novel concepts such as reverse support combustion, self-combustion of ionic liquids, and creation of oxygen vacancies are presented. SCS has some unique advantages such as its capability for in situ doping of oxides and construction of heterojunctions. The well-developed porosity and large specific surface area caused by gas evolution during the combustion process endow the resulting materials with exceptional properties. The relationship between the structural properties of the metal oxides studied and their performance is discussed. Finally, the conclusions and perspectives are briefly presented.
机译:金属氧化物的设计和合成纳米材料是关键步骤之一实现高效的能量转换和存储工业规模。燃烧合成(SCS)是一个时间与其他相比节能方法路线,特别是对于复杂的准备可以很容易地用于扩大的氧化物应用程序。各种金属氧化物纳米材料的合成和他们的能量转换和申请存储,包括锂离子电池,超级电容器,氢和甲烷生产,燃料电池和太阳能电池。小说的概念,如反向支持离子液体的燃烧,自燃,提出了建立氧气空缺。有一些独特的优势,如它的功能原位掺杂的氧化物和建设垂直。大比表面积由气体引起的在燃烧过程中进化赋予的导致材料特殊属性。结构之间的关系金属氧化物的特性和他们的学习性能进行了探讨。结论和观点简要提出了。

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