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纳米纤维共价有机框架作为具有高能量密度和超快充电性能的电池的阴极、隔膜和阳极。

Nanofibrous Covalent Organic Frameworks as the Cathode, Separator, and Anode for Batteries with High Energy Density and Ultrafast-Charging Performance.

作者信息

Duan Ju, Wang Kexiang, Teng Likuan, Liu He, Xu Linchu, Huang Qihang, Li Yitao, Liu Mengqi, Hu Huawei, Chen Xin, Wang Jianan, Yan Wei, Lyu Wei, Liao Yaozu

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China.

Department of Environmental Science and Engineering, State Key Laboratory of Multiphase Flow in Power Engineering, School of Energy and Power Engineering, Xi'an Jiaotong University, Xi'an, the People's Republic of China, Xi'an 710000, China.

出版信息

ACS Nano. 2024 Oct 22;18(42):29189-29202. doi: 10.1021/acsnano.4c11262. Epub 2024 Oct 8.

DOI:10.1021/acsnano.4c11262
PMID:39377210
Abstract

To meet the demand for longer driving ranges and shorter charging times of power equipment in electric vehicles, engineering fast-charging batteries with exceptional capacity and extended lifespan is highly desired. In this work, we have developed a stable ultrafast-charging and high-energy-density all-nanofibrous covalent organic framework (COF) battery (ANCB) by designing a series of imine-based nanofibrous COFs for the cathode, separator, and anode by Schiff-base reactions. Hierarchical porous structures enabled by nanofibrous COFs were constructed for enhanced kinetics. Rational chemical structures have been designed for the cathode, separator, and anode materials, respectively. A nanofibrous COF (AA-COF) with bipolarization active sites and a wider layer spacing has been designed using a triphenylamine group for the cathode to achieve high voltage limits with fast mass transport. For the anode, a nanofibrous COF (TT-COF) with abundant polar groups, active sites, and homogenized Li flux based on imine, triazine, and benzene has been synthesized to ensure stable fast-charging performance. As for the separator, a COF-based electrospun polyacrylonitrile (PAN) composite nanofibrous separator (BB-COF/PAN) with hierarchical pores and high-temperature stability has been prepared to take up more electrolyte, promote mass transport, and enable as high-temperature operation as possible. The as-assembled ANCB delivers a high energy density of 517 Wh kg, a high power density of 9771 W kg with only 56 s of ultrafast-charging time, and high-temperature operational potential, accompanied by a 0.56% capacity fading rate per cycle at 5 A g and 100 °C. This ANCB features an ultralong lifespan and distinguished ultrafast-charging performance, making it a promising candidate for powering equipment in electric vehicles.

摘要

为满足电动汽车动力设备更长续航里程和更短充电时间的需求,人们迫切希望开发出具有卓越容量和更长使用寿命的工程快充电池。在这项工作中,我们通过席夫碱反应设计了一系列用于阴极、隔膜和阳极的基于亚胺的纳米纤维共价有机框架(COF),从而开发出一种稳定的超快充电且高能量密度的全纳米纤维共价有机框架电池(ANCB)。纳米纤维COF构建的分级多孔结构可增强动力学性能。分别为阴极、隔膜和阳极材料设计了合理的化学结构。使用三苯胺基团为阴极设计了具有双极化活性位点和更宽层间距的纳米纤维COF(AA-COF),以实现具有快速质量传输的高电压极限。对于阳极,合成了一种基于亚胺、三嗪和苯的具有丰富极性基团、活性位点和均匀锂通量的纳米纤维COF(TT-COF),以确保稳定的快充性能。至于隔膜,制备了一种具有分级孔隙和高温稳定性的基于COF的电纺聚丙烯腈(PAN)复合纳米纤维隔膜(BB-COF/PAN),以吸收更多电解质、促进质量传输并实现尽可能高的温度运行。组装好的ANCB具有517 Wh kg的高能量密度、9771 W kg的高功率密度以及仅56秒的超快充电时间,同时具有高温运行潜力,在5 A g和100°C下每循环容量衰减率为0.56%。这种ANCB具有超长的使用寿命和卓越的超快充电性能,使其成为电动汽车动力设备的有前途的候选者。

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