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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Columnar assembly and successive heating of colloidal 2D nanomaterials on graphene as an efficient strategy for new anode materials in lithium ion batteries: the case of In2S3 nanoplates
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Columnar assembly and successive heating of colloidal 2D nanomaterials on graphene as an efficient strategy for new anode materials in lithium ion batteries: the case of In2S3 nanoplates

机译:柱状组装和在石墨烯上连续加热胶体2D纳米材料,作为锂离子电池中新阳极材料的有效策略:In2S3纳米板的情况

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摘要

This study shows that heat-treatment of colloidal inorganic nanoplates with columnar assembly under argon is a good strategy for development of anode materials. The heating of colloidal In2S3 nanoplates under argon resulted in the formation of film-like materials through interconnection of plates in a side by side manner. When the columnarly assembled colloidal In2S3 plates were heated at 400 °C under argon for 2 hours on graphene, more efficient anode materials with smaller diameters were obtained. Interestingly, the heat-treated columnarly assembled In2S3 plates on graphene had a layered structure, which was attributed to the possible existence of carbon materials between plates formed by the heat-treatment of surfactants under argon. The resultant graphene-In2S3 composites showed enhanced discharge capacities, up to 716-837 mA h g~(-1), as well as excellent stabilities. In addition, the materials showed promising coulombic efficiencies and rate performances. We believe that, based on the strategy in this work, diverse graphene-inorganic nanomaterial composites with a layered structure can be prepared and applied as new anode materials in lithium ion batteries.
机译:这项研究表明,在氩气下以柱状组装方式对胶体无机纳米板进行热处理是开发负极材料的良好策略。胶体In2S3纳米板在氩气下的加热导致通过并排互连板而形成膜状材料。将柱状组装的In2S3胶体板在氩气中于400°C的石墨烯上加热2小时后,可获得直径较小,效率更高的阳极材料。有趣的是,在石墨烯上经热处理的柱状组装的In 2 S 3板具有层状结构,这归因于在通过在氩气下对表面活性剂进行热处理而形成的板之间可能存在碳材料。所得石墨烯-In2S3复合材料显示出增强的放电容量,高达716-837 mA h g〜(-1),并且具有出色的稳定性。另外,这些材料显示出有希望的库仑效率和速率性能。我们认为,基于这项工作的策略,可以制备出具有层状结构的多种石墨烯-无机纳米材料复合材料,并将其用作锂离子电池的新型负极材料。

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