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首页> 外文期刊>Nanoscale >Fabrication and understanding of Cu3Si-Si@carbon@graphene nanocomposites as high-performance anodes for lithium-ion batteries
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Fabrication and understanding of Cu3Si-Si@carbon@graphene nanocomposites as high-performance anodes for lithium-ion batteries

机译:制造和理解Cu3Si-Si@carbon@graphene纳米复合材料作为高性能锂离子电池的阳极

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摘要

Besides silicon's low electronic conductivity, another critical issue for using silicon as the anode for lithium-ion batteries (LIBs) is the dramatic volume variation (>300) during lithiation/delithiation processes, which can lead to rapid capacity fading and poor rate capability, thereby hampering silicon's practical applications in batteries. To mitigate these issues, herein, we report our findings on the design and understanding of a self-supported Cu3Si-Si@ carbon@ graphene (Cu3Si-SCG) nanocomposite anode. The nanocomposite is composed of Cu3Si-Si core and carbon shell with core/shell particles uniformly encapsulated by graphene nanosheets anchored directly on a Cu foil. In this design, the carbon shell, the highly elastic graphene nanosheet, and the formed conductive and inactive Cu3Si phase in Si serve as buffer media to suppress volume variation of Si during lithiation/delithiation processes and to facilitate the formation of a stable solid electrolyte interface (SEI) layer as well as to enable good transport kinetics. Chemomechanical simulation results quantitatively coincide with the in situ TEM observations of volume expansion and provide process details not seen in experiments. The optimized Cu(3)SiSCG nanocomposite anode exhibits good rate performance and delivers reversible capacity of 483 mA h g(-1) (based on the total weight of Cu3Si-SCG) after 500 cycles with capacity retention of about 80 at high current density of 4 A g(-1), rendering the nanocomposite a desirable anode candidate for high-performance LIBs.
机译:除了硅的电子导电率低,使用硅作为的另一个关键问题锂离子电池(LIBs)是阳极戏剧性的过程中体积变化(在300%)lithiation / delithiation过程,这会引起快速衰落能力和贫穷率能力,从而阻碍了硅的实用在电池中的应用。的问题,在此,我们报告我们的发现且设计和理解Cu3Si-Si@ carbon@石墨烯(Cu3Si-SCG)纳米复合材料阳极。Cu3Si-Si核心和碳壳组成核/壳粒子均匀封装石墨烯nanosheets直接固定铜箔。高弹性石墨烯nanosheet,形成导电和非活动Cu3Si阶段如果服务作为缓冲媒体抑制体积的变化如果在lithiation / delithiation流程和促进形成一个稳定的固体电解液界面(SEI)层以及使交通动力学。仿真结果定量地配合体积膨胀的原位透射电镜观察并提供的流程细节实验。纳米复合材料阳极展品良好率性能和可逆容量483毫安h g(1)(总重量的基础上Cu3Si-SCG) 500次后容量在高电流密度的保留约80%4 g(1),呈现的纳米复合材料理想的阳极高性能的候选人填词。

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