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High-Mass-Loading Electrodes for Advanced Secondary Batteries and Supercapacitors

机译:High-Mass-Loading电极对于高级二次电池和超级电容器

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摘要

The growing demand for advanced electrochemical energy storage systems (EESSs) with high energy densities for electric vehicles and portable electronics is driving the electrode revolution, in which the development of high-mass-loading electrodes (HMLEs) is a promising route to improve the energy density of batteries packed in limited spaces through the optimal enlargement of active material loading ratios and reduction of inactive component ratios in overall cell devices. However, HMLEs face significant challenges including inferior charge kinetics, poor electrode structural stability, and complex and expensive production processes. Based on this, this review will provide a comprehensive summary of HMLEs, beginning with a basic presentation of factors influencing HMLE electrochemical properties, the understanding of which can guide optimal HMLE designs. Rational strategies to improve the electrochemical performance of HMLEs accompanied by corresponding advantages and bottlenecks are subsequently discussed in terms of various factors ranging from inactive component modification to active material design to structural engineering at the electrode scale. This review will also present the recent progress and approaches of HMLEs applied in various EESSs, including advanced secondary batteries (lithium-/sodium-/potassium-/aluminum-/calcium-ion batteries, lithium metal anodes, lithium-sulfur batteries, lithium-air batteries, zinc batteries, magnesium batteries) and supercapacitors. Finally, this review will examine the challenges and prospects of HMLE commercialization with a focus on thermal safety, performance evaluation, advanced characterization, and production cost assessment to guide future development.
机译:先进的电化学日益增长的需求能源存储系统(套)具有高的能量密度对电动汽车和便携式电子驱动电极革命,high-mass-loading的发展电极(hml)是一种有希望的途径提高电池的能量密度在包装通过优化扩大空间有限活性物质加载率和减少比率整体细胞不活跃的组件设备。挑战包括低电荷动力学,电极结构稳定性差,而复杂和昂贵的生产过程。这将提供一个全面的审查总结hml,从基本的开始HMLE影响因素电化学性能的理解可以指导最优HMLE设计。策略来提高电化学hml伴随着相应的性能随后优势和瓶颈讨论了各种因素等从非活动组件修改活动材料设计的结构工程电极的规模。xml的最新进展和方法应用于各种套,包括先进二次电池

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