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首页> 外文期刊>Advances in space research >Graphene synthesized as by-product of gas purification in long-term space missions and its lithium-ion battery application
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Graphene synthesized as by-product of gas purification in long-term space missions and its lithium-ion battery application

机译:长期太空飞行中作为气体净化副产物合成的石墨烯及其锂离子电池应用

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To support long-term missions in space, it is important to recycle valuable consumables, such as oxygen (O-2) and water. In a Sabatier reactor, hydrogen is employed to reduce carbon dioxide (CO2) to methane (CH4) and O-2, then an integrated system is designed to recycle hydrogen from CH4, which includes a methane purification assembly (MePA), a plasma pyrolysis assembly (PPA), an acetylene separation assembly (ASepA). In the PPA reactor, carbon particulates were observed to form as a by-product. In this study, this carbon material was characterized and a significant fraction is graphene with a low oxygen content. HRTEM images clearly showed a partially crystalline hexagonal structure, which is a characteristic graphene signature. The specific surface area of the graphene was measured to be 258.5 m(2)/g, one tenth of the theoretical value of single layer graphene, which can be attributed to stacking of the few layers and partial crumpling of this material. To explore potential uses of this material, the crumpled graphene was used to synthesize anodes of lithium-ion batteries (LIBs), which were then tested for their electrochemical performance. In long-term cycle tests, LIBs made with crumpled graphene demonstrated a high retention rate after the first cycle, indicating very little additional degradation of the electrode. The high stability of the cells can be attributed to the greater variety and higher number of lithium ion storage sites in the crumpled graphene, compared with bulk graphite. Considering the crumpled graphene as a by-product and the high electrochemical performance of the crumpled graphene LIBs, crumpled graphene synthesized in the NASA plasma reactor has great promise in better supporting the long-duration space missions. (C) 2018 COSPAR. Published by Elsevier Ltd. All rights reserved.
机译:为了支持太空中的长期任务,重要的是回收有价值的消耗品,例如氧气(O-2)和水。在Sabatier反应器中,使用氢气将二氧化碳(CO2)还原为甲烷(CH4)和O-2,然后设计一个集成系统以从CH4中回收氢气,该系统包括甲烷纯化装置(MePA),等离子热解组件(PPA),乙炔分离组件(ASepA)。在PPA反应器中,观察到有碳颗粒形成为副产物。在这项研究中,对这种碳材料进行了表征,其中很大一部分是具有低氧含量的石墨烯。 HRTEM图像清楚地显示了部分结晶的六边形结构,这是石墨烯的特征标记。石墨烯的比表面积经测量为258.5 m(2)/ g,仅为单层石墨烯理论值的十分之一,这可归因于该材料的少量堆叠和部分起皱。为了探索这种材料的潜在用途,使用了皱纹的石墨烯来合成锂离子电池(LIB)的阳极,然后对其进行电化学性能测试。在长期循环测试中,用皱纹石墨烯制成的LIB在第一个循环后显示出较高的保留率,表明电极的附加降解极小。与块状石墨相比,电池的高稳定性可归因于皱缩的石墨烯中锂离子存储位点的种类更多和数量更多。考虑到皱纹石墨烯是副产品以及皱纹石墨烯LIB的高电化学性能,在NASA等离子体反应器中合成的皱纹石墨烯在更好地支持长期太空飞行方面具有广阔的前景。 (C)2018年COSPAR。由Elsevier Ltd.出版。保留所有权利。

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