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Recent Advances in Silicon-Based Electrodes: From Fundamental Research toward Practical Applications

机译:基于硅基电极的最新进展:从实际应用的基本研究

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摘要

The increasing demand for higher-energy-density batteries driven by advancements in electric vehicles, hybrid electric vehicles, and portable electronic devices necessitates the development of alternative anode materials with a specific capacity beyond that of traditional graphite anodes. Here, the state-of-the-art developments made in the rational design of Si-based electrodes and their progression toward practical application are presented. First, a comprehensive overview of fundamental electrochemistry and selected critical challenges is given, including their large volume expansion, unstable solid electrolyte interface (SEI) growth, low initial Coulombic efficiency, low areal capacity, and safety issues. Second, the principles of potential solutions including nanoarchitectured construction, surface/interface engineering, novel binder and electrolyte design, and designing the whole electrode for stability are discussed in detail. Third, applications for Si-based anodes beyond LIBs are highlighted, specifically noting their promise in configurations of Li-S batteries and all-solid-state batteries. Fourth, the electrochemical reaction process, structural evolution, and degradation mechanisms are systematically investigated by advanced in situ and operando characterizations. Finally, the future trends and perspectives with an emphasis on commercialization of Si-based electrodes are provided. Si-based anode materials will be key in helping keep up with the demands for higher energy density in the coming decades.
机译:对由电动车辆,混合动力电动车辆和便携式电子设备的进步驱动的更高能量密度电池的需求不断增加,需要具有超出传统石墨阳极的特定容量的替代阳极材料。这里,提出了在基于Si基电极的合理设计中进行的最先进的开发及其对实际应用的进展。首先,给出了基本电化学的全面概述,包括其大量扩张,不稳定的固体电解质接口(SEI)生长,初始库仑效率低,面积容量和安全问题。其次,详细讨论了包括纳米建筑结构,表面/接口工程,新型粘合剂和电解质设计的潜在解决方案的原理,以及设计整个电极进行稳定性。第三,突出了基于SI的阳极的应用,特别是在LI-S电池和全固态电池的配置中特别注意到它们的承诺。第四,通过先进的原位和操作扬说表征系统地研究了电化学反应过程,结构演化和降解机制。最后,提供了强调基于Si基电极商业化的未来趋势和观点。基于SI的阳极材料将是帮助在未来几十年中保持对更高能量密度的需求的关键。

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