锂离子电池结构电极及其对电池能量密度和功率密度的影响

IF 5.7 Q2 ENERGY & FUELS
Fatjon Maxharraj, Karsten Voigt, Anton Werwein, Christian Heubner, Kristian Nikolowski, Mareike Partsch, Alexander Michaelis
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引用次数: 0

摘要

在包括现代电动汽车在内的各种应用中,对具有高重量和体积能量密度的电池的需求正在增长,这推动了对新的生产概念的需求,以满足这一要求。提高锂离子电池的能量和功率密度是一个至关重要的目标,因为它指的是在给定的体积或质量下可以存储多少能量,以及能量传递的速度,这是决定电池性能的关键因素。为了追求更高的能量密度和快速充电能力,最近人们开始关注通过重组锂离子电池电极膜的基质组成来优化复合电极结构的特征,如孔隙度、导电性或扭曲度。这篇综述强调了结构的重要性,探讨了电极设计的最新进展,并使用计算工具(Ragone计算器)在能量和功率密度方面对它们进行了批判性评估。使用Ragone计算器可以在细胞水平上对不同设计的电极进行评估。各种电极设计创建使用不同的技术,包括激光,多层结构和交叉数字化的方法进行了评估。这篇综述的见解可以帮助读者评估结构化技术的实际改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Structured Electrodes for Lithium-Ion Batteries and Their Impact on Cell Energy Density and Power Density: A Review

Structured Electrodes for Lithium-Ion Batteries and Their Impact on Cell Energy Density and Power Density: A Review

In various applications, including modern electric vehicles, the demand for batteries with high gravimetric and volumetric energy density is growing, driving the need for new production concepts to meet this requirement. Enhancing the energy and power density of lithium-ion batteries is a crucial goal, as it refers to how much energy can be stored in a given volume or mass and how quickly that energy can be delivered, which are key factors determining the performance of batteries. In pursuit of higher energy density and fast-charging capability, recent attention has been drawn toward strategies that emphasize optimizing the characteristics of composite electrode structures, such as porosity, conductivity, or tortuosity, achieved through restructuring the matrix composition of lithium-ion battery electrode films. This review highlights the importance of structuring, explores recent advances in electrode design, and critically evaluates them in terms of energy and power density using a computational tool (Ragone calculator). Employing the Ragone calculator enables the evaluation of electrodes with different designs on the cell level. Various electrode designs created using different techniques, including laser, multilayer structuring, and interdigitated approaches are evaluated. The insights from this review can help the reader to assess the actual improvements from the structuring technique.

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来源期刊
CiteScore
8.20
自引率
3.40%
发文量
0
期刊介绍: Advanced Energy and Sustainability Research is an open access academic journal that focuses on publishing high-quality peer-reviewed research articles in the areas of energy harvesting, conversion, storage, distribution, applications, ecology, climate change, water and environmental sciences, and related societal impacts. The journal provides readers with free access to influential scientific research that has undergone rigorous peer review, a common feature of all journals in the Advanced series. In addition to original research articles, the journal publishes opinion, editorial and review articles designed to meet the needs of a broad readership interested in energy and sustainability science and related fields. In addition, Advanced Energy and Sustainability Research is indexed in several abstracting and indexing services, including: CAS: Chemical Abstracts Service (ACS) Directory of Open Access Journals (DOAJ) Emerging Sources Citation Index (Clarivate Analytics) INSPEC (IET) Web of Science (Clarivate Analytics).
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