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用于无枝晶锂金属阳极和超高倍率锂电池的生物膜纳米纤维涂层隔膜

Biofilm Nanofiber-Coated Separators for Dendrite-Free Lithium Metal Anode and Ultrahigh-Rate Lithium Batteries.

作者信息

Nie Lu, Li Yingfeng, Chen Shaojie, Li Ke, Huang Yuanqi, Zhu Yubo, Sun Zhetao, Zhang Jicong, He Yingjie, Cui Mengkui, Wei Shicao, Qiu Feng, Zhong Chao, Liu Wei

机构信息

Shanghai Institute of Ceramics , Chinese Academy of Sciences , Shanghai 200050 , China.

University of Chinese Academy of Sciences , Beijing 100049 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Sep 4;11(35):32373-32380. doi: 10.1021/acsami.9b08656. Epub 2019 Aug 23.

DOI:10.1021/acsami.9b08656
PMID:31407877
Abstract

Rechargeable batteries that combine high energy density with high power density are highly demanded. However, the wide utilization of lithium metal anode is limited by the uncontrollable dendrite growth, and the conventional lithium-ion batteries (LIBs) commonly suffer from low rate capability. Here, we for the first time develop a biofilm-coated separator for high-energy and high-power batteries. It reveals that the coating of protein nanofibers can improve electrolyte wettability and lithium transference number and enhance adhesion between separators and electrodes. Thus, lithium dendrite growth is impeded because of the uniform distribution of the Li-ion flux. The modified separator also enables the stable cycling of high-voltage Li|LiMnNiO (LNMO) cells at an extremely high rate of 20 C, delivering a high specific capacity of 83.1 mA h g, which exceeds the conventional counterpart. In addition, the modified separator in the LiTiO|LNMO full cell also exhibits a larger capacity of 68.2 mA h g at 10 C than the uncoated separator of 37.4 mA h g. Such remarkable performances of the modified separators arise from the conformal, adhesive, and endurable coating of biofilm nanofibers. Our work opens up a new opportunity for protein-based biomaterials in practical application of high-energy and high-power batteries.

摘要

兼具高能量密度和高功率密度的可充电电池需求迫切。然而,锂金属负极的广泛应用受到不可控枝晶生长的限制,传统锂离子电池(LIBs)通常倍率性能较差。在此,我们首次开发了一种用于高能量和高功率电池的生物膜包覆隔膜。研究表明,蛋白质纳米纤维涂层可改善电解质润湿性和锂迁移数,并增强隔膜与电极之间的附着力。因此,由于锂离子通量的均匀分布,锂枝晶生长受到抑制。这种改性隔膜还能使高压Li|LiMnNiO(LNMO)电池在20 C的极高倍率下稳定循环,提供83.1 mA h g的高比容量,超过了传统隔膜。此外,LiTiO|LNMO全电池中的改性隔膜在10 C时的容量为68.2 mA h g,也比未包覆隔膜的37.4 mA h g更大。改性隔膜的这种卓越性能源于生物膜纳米纤维的保形、粘附和耐用涂层。我们的工作为基于蛋白质的生物材料在高能量和高功率电池的实际应用中开辟了新机遇。

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