Li Bangxing, Kang Xing, Wu Xiaofeng, Hu Xiaolin
School of science, Chongqing Key Laboratory of New Energy Storage Materials and Devices, Chongqing University of Technology, Chongqing 400054, China.
Department of Chemistry, University of Liverpool, Liverpool L69 7ZD, UK.
J Colloid Interface Sci. 2024 Oct;671:621-630. doi: 10.1016/j.jcis.2024.05.184. Epub 2024 May 24.
Lithium (Li) metal anodes (LMAs) are regarded as leading technology for advanced-generation batteries due to their high theoretical capacity and favorable redox potential. However, the practical integration of LMAs into high-energy rechargeable batteries is hindered by the challenge of Li dendrite growth. In this work, nanoparticles of LiLaZrTaO (LLZTO) loaded with Ce(OH) (LLZTCO) were designed and synthesized by a hydrothermal method. A functional composite separator was crafted by coating one side of a polypropylene (PP) separator with a composite electrolyte comprised of polyvinylidene fluoride (PVDF) and LLZTCO. The synergistic interactions between PVDF and LLZTCO provide numerous rapid lithium-ion (Li) channels, facilitating the efficient redistribution of disparate Li flux originating from the insulated PP separator. The composite separator demonstrated an ionic conductivity (σ) of 3.68 × 10 S cm, substantial Li transference number (t) of 0.73, and a high electrochemical window of 4.8 V at 25℃. Furthermore, the Li/LLZTCO@PP/Li symmetric cells demonstrated stable cycling for over 2000 h without significant dendrite formation. The Li/LiFePO (LFP) cells assembled with LLZTCO@PP separators exhibited a capacity retention of 91.6 % after 400 cycles at 1C. This study offers a practical approach to fabricating composite separators with enhanced safety and superior electrochemical performance.
锂(Li)金属阳极(LMA)因其高理论容量和良好的氧化还原电位而被视为下一代先进电池的领先技术。然而,锂枝晶生长的挑战阻碍了LMA在高能可充电电池中的实际应用。在这项工作中,通过水热法设计并合成了负载Ce(OH)的LiLaZrTaO(LLZTO)纳米颗粒(LLZTCO)。通过在聚丙烯(PP)隔膜的一侧涂覆由聚偏氟乙烯(PVDF)和LLZTCO组成的复合电解质,制备了一种功能性复合隔膜。PVDF和LLZTCO之间的协同相互作用提供了大量快速的锂离子(Li)通道,促进了源自绝缘PP隔膜的不同Li通量的有效重新分布。该复合隔膜在25℃下表现出3.68×10 S cm的离子电导率(σ)、0.73的高Li迁移数(t)和4.8 V的高电化学窗口。此外,Li/LLZTCO@PP/Li对称电池在超过2000小时的循环中表现稳定,没有明显的枝晶形成。用LLZTCO@PP隔膜组装的Li/LiFePO(LFP)电池在1C下400次循环后容量保持率为91.6%。这项研究提供了一种制造具有增强安全性和卓越电化学性能的复合隔膜的实用方法。