School of Packaging and Materials Engineering, Hunan University of Technology, Zhuzhou 412007, China.
Int J Mol Sci. 2024 Jun 21;25(13):6822. doi: 10.3390/ijms25136822.
Lithium-ion batteries, as an excellent energy storage solution, require continuous innovation in component design to enhance safety and performance. In this review, we delve into the field of eco-friendly lithium-ion battery separators, focusing on the potential of cellulose-based materials as sustainable alternatives to traditional polyolefin separators. Our analysis shows that cellulose materials, with their inherent degradability and renewability, can provide exceptional thermal stability, electrolyte absorption capability, and economic feasibility. We systematically classify and analyze the latest advancements in cellulose-based battery separators, highlighting the critical role of their superior hydrophilicity and mechanical strength in improving ion transport efficiency and reducing internal short circuits. The novelty of this review lies in the comprehensive evaluation of synthesis methods and cost-effectiveness of cellulose-based separators, addressing significant knowledge gaps in the existing literature. We explore production processes and their scalability in detail, and propose innovative modification strategies such as chemical functionalization and nanocomposite integration to significantly enhance separator performance metrics. Our forward-looking discussion predicts the development trajectory of cellulose-based separators, identifying key areas for future research to overcome current challenges and accelerate the commercialization of these green technologies. Looking ahead, cellulose-based separators not only have the potential to meet but also to exceed the benchmarks set by traditional materials, providing compelling solutions for the next generation of lithium-ion batteries.
锂离子电池作为一种出色的储能解决方案,需要不断创新的组件设计,以提高安全性和性能。在这篇综述中,我们深入探讨了环保型锂离子电池隔膜领域,聚焦于纤维素基材料作为传统聚烯烃隔膜可持续替代品的潜力。我们的分析表明,纤维素材料具有固有的可降解性和可再生性,可为出色的热稳定性、电解质吸收能力和经济可行性提供保障。我们系统地对纤维素基电池隔膜的最新进展进行了分类和分析,强调了其卓越的亲水性和机械强度在提高离子传输效率和减少内部短路方面的关键作用。本综述的新颖之处在于对纤维素基隔膜的合成方法和成本效益进行了全面评估,填补了现有文献中的重大知识空白。我们详细探讨了生产工艺及其可扩展性,并提出了创新性的改性策略,如化学官能化和纳米复合材料集成,以显著提高隔膜性能指标。我们前瞻性地讨论了纤维素基隔膜的发展轨迹,确定了未来研究的关键领域,以克服当前的挑战并加速这些绿色技术的商业化进程。展望未来,纤维素基隔膜不仅有可能满足,甚至可能超越传统材料设定的基准,为下一代锂离子电池提供极具吸引力的解决方案。