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首页> 外文期刊>Electrochimica Acta >High Rate Capability of SiOC Ceramic Aerogels with Tailored Porosity as Anode Materials for Li-ion Batteries
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High Rate Capability of SiOC Ceramic Aerogels with Tailored Porosity as Anode Materials for Li-ion Batteries

机译:具有定制孔隙率的SiOC陶瓷气凝胶作为锂离子电池负极材料的高倍容量

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摘要

Porous carbon-rich SiOC ceramic aerogels have been synthesized from a linear polysiloxane cross-linked with divinylbenzene (DVB) via hydrosilylation reaction in presence of a Pt catalyst and acetone as a solvent. The obtained wet gels are aged in solvent followed by drying under supercritical conditions using liquid carbon dioxide. The resulting pre-ceramic aerogels are subjected to pyrolysis at 1000 degrees C under controlled argon atmosphere to form the desired SiOC aerogel. The synthesized SiOC ceramics contain 43 wt% of free carbon, which is segregated within amorphous SiOC matrix. The high BET surface area up to 230 m(2)g(-1) of preceramic aerogels is only slightly diminished to 180m(2)g(-1) after pyrolysis at 1000 degrees C. The electrochemical characterization reveals a high specific capacity of more than 600 mAhg(-1) at a charging rate of C (360 mA g(-1)) along with a good cycling stability. At a rate of 10C (3600 mA g(-1)) the specific capacities as high as 200 mAh g(-1) are recovered. The excellent properties of the materials are discussed with respect to their structural features. The porous nature of the carbon rich ceramics allows for fast ionic transport and helps to accommodate the structural changes which in turn allow a stable performance during repeated lithiation/delithiation. (C) 2015 Elsevier Ltd. All rights reserved.
机译:已经在Pt催化剂和丙酮作为溶剂的存在下,通过氢化硅烷化反应由与二乙烯基苯(DVB)交联的线性聚硅氧烷合成了富含碳的SiOC多孔陶瓷气凝胶。将获得的湿凝胶在溶剂中老化,然后在超临界条件下使用液态二氧化碳干燥。将所得的陶瓷前气凝胶在受控的氩气气氛下于1000℃进行热解,以形成所需的SiOC气凝胶。合成的SiOC陶瓷包含43 wt%的游离碳,这些游离碳被隔离在非晶SiOC基体内。高达230 m(2)g(-1)的陶瓷前气凝胶的高BET表面积在1000摄氏度下热解后仅略微减小至180m(2)g(-1)。电化学表征显示高比表面积充电速率为C(360 mA g(-1))时超过600 mAhg(-1),并具有良好的循环稳定性。以10C(3600 mA g(-1))的速率回收的比容量高达200 mAh g(-1)。讨论了材料的优异性能及其结构特征。富碳陶瓷的多孔性质允许快速的离子传输,并有助于适应结构变化,从而在重复的锂化/去锂化过程中又能提供稳定的性能。 (C)2015 Elsevier Ltd.保留所有权利。

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