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High-performance Si@C anode for lithium-ion batteries enabled by a novel structuring strategy

机译:通过新颖的结构策略实现锂离子电池的高性能Si@C阳极

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摘要

Si anode has drawn growing attention because of its features of large specific capacity, low electrochemical potential, and high natural abundance. However, it suffers from severe electrochemical irreversibility due to its large volume change during cycling. In spite of the achievement of improved electrochemical performance after compositing with carbon materials, most of the reported Si/C composite anodes lack a simple preparation process. To obtain a promising Si-based anode material, both simple preparation process and improved performance are necessary. Herein, inspired by the structure of shock proof foam, a novel structure of Si-based composite (Si@FeNO@P), consisting of Si nanoparticles embedded within a highly graphitized Fe3C/Fe3O4 hybrid nanoparticle-interspersed foam-like porous carbon matrix, has been constructed using a simple method, consisting of simple mixing, drying, and carbonization processes. Thus, the well-designed composite structure effectively mitigates issues resulting from volumetric change of the Si during cycle and hence improves its performance significantly. The research results confirm outstanding performance of the Si@FeNO@P anode in the aspects of cycle durability, specific capacity, and rate capability, with 1116.1 (250th cycle), 858.1 (500th cycle), and 503.1 (500th cycle) mA h g−1 at 100, 1000, and 5000 mA g−1, respectively. By comparing the performance and structure of Si@FeNO@P with other control samples, it was substantiated that the outstanding performances of the Si@FeNO@P anode depend on the synergistic effects of the well-designed unique carbon matrix, conductive Fe3C, and Fe3O4-in situ derived metallic Fe nanoparticles during cycling. The outstanding electrochemical performance and simple preparation route make the Si@FeNO@P anode promising for lithium-ion battery applications. This work also gives useful insights into the development of high-performance Si-based anodes with simple practical methods.
机译:硅负极因其比容量大、电化学电位低、天然丰度高等特点而备受关注。然而,由于其在循环过程中体积变化很大,它遭受了严重的电化学不可逆性。尽管与碳材料复合后取得了更好的电化学性能,但大多数报道的Si/C复合阳极缺乏简单的制备工艺。为了获得一种有前途的硅基负极材料,需要简化制备工艺和提高性能。本文受防震泡沫结构的启发,采用简单的混合、干燥和碳化工艺,构建了一种新型的硅基复合材料(Si@FeNO@P),该复合材料由Si纳米颗粒嵌入高度石墨化的Fe3C/Fe3O4杂化纳米颗粒散布的泡沫状多孔碳基体中组成。因此,精心设计的复合结构有效地缓解了循环过程中Si体积变化引起的问题,从而显着提高了其性能。研究结果证实了Si@FeNO@P阳极在循环耐久性、比容量和倍率能力方面的突出性能,在100、1000和5000 mA g−1时分别为1116.1(第250次循环)、858.1(第500次循环)和503.1(第500次循环)mA h g−1。通过与其他对照样品的Si@FeNO@P性能和结构的比较,证实了Si@FeNO@P阳极的优异性能取决于精心设计的独特碳基体、导电Fe3C和Fe3O4原位衍生金属Fe纳米颗粒在循环过程中的协同作用。优异的电化学性能和简单的制备路线使Si@FeNO@P负极在锂离子电池中具有广阔的应用前景。这项工作还为开发具有简单实用方法的高性能硅基阳极提供了有用的见解。

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