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碳纳米管网与羧基化聚噻吩“协同”助力高性能电池电极。

Carbon Nanotube Web with Carboxylated Polythiophene "Assist" for High-Performance Battery Electrodes.

机构信息

Department of Chemical and Biomolecular Engineering , Georgia Institute of Technology , Atlanta , Georgia 30332 , United States.

Department of Chemical and Biomolecular Engineering , Korea Advanced Institute of Science and Technology (KAIST) , 291 Daehak-ro , Yuseong-gu, Daejeon 305-701 , Republic of Korea.

出版信息

ACS Nano. 2018 Apr 24;12(4):3126-3139. doi: 10.1021/acsnano.7b08918. Epub 2018 Jan 19.

Abstract

A carbon nanotube (CNT) web electrode comprising magnetite spheres and few-walled carbon nanotubes (FWNTs) linked by the carboxylated conjugated polymer, poly[3-(potassium-4-butanoate) thiophene] (PPBT), was designed to demonstrate benefits derived from the rational consideration of electron/ion transport coupled with the surface chemistry of the electrode materials components. To maximize transport properties, the approach introduces monodispersed spherical FeO (sFeO) for uniform Li diffusion and a FWNT web electrode frame that affords characteristics of long-ranged electronic pathways and porous networks. The sFeO particles were used as a model high-capacity energy active material, owing to their well-defined chemistry with surface hydroxyl (-OH) functionalities that provide for facile detection of molecular interactions. PPBT, having a π-conjugated backbone and alkyl side chains substituted with carboxylate moieties, interacted with the FWNT π-electron-rich and hydroxylated sFeO surfaces, which enabled the formation of effective electrical bridges between the respective components, contributing to efficient electron transport and electrode stability. To further induce interactions between PPBT and the metal hydroxide surface, polyethylene glycol was coated onto the sFeO particles, allowing for facile materials dispersion and connectivity. Additionally, the introduction of carbon particles into the web electrode minimized sFeO aggregation and afforded more porous FWNT networks. As a consequence, the design of composite electrodes with rigorous consideration of specific molecular interactions induced by the surface chemistries favorably influenced electrochemical kinetics and electrode resistance, which afforded high-performance electrodes for battery applications.

摘要

一种由磁性球体和通过羧基化共轭聚合物聚[3-(4-丁氧基)噻吩] (PPBT) 连接的少壁碳纳米管 (FWNTs) 组成的碳纳米管 (CNT) 网电极,旨在展示从电子/离子传输的合理考虑以及电极材料组件的表面化学衍生的益处。为了最大限度地提高传输性能,该方法引入了单分散球形 FeO (sFeO) 以实现均匀的 Li 扩散和 FWNT 网电极框架,该框架具有长程电子途径和多孔网络的特点。sFeO 颗粒被用作高容量能量活性材料的模型,因为其具有明确的化学性质,表面带有羟基 (-OH) 官能团,便于检测分子相互作用。具有π-共轭主链和烷基侧链取代羧基的 PPBT 与 FWNT π-电子富和羟基化 sFeO 表面相互作用,这使得各组件之间形成有效的电桥,有助于高效的电子传输和电极稳定性。为了进一步诱导 PPBT 和金属氢氧化物表面之间的相互作用,将聚乙二醇涂覆到 sFeO 颗粒上,从而实现了材料的易于分散和连接。此外,将碳颗粒引入网电极中可以最小化 sFeO 团聚并提供更多的多孔 FWNT 网络。因此,通过严格考虑表面化学引起的特定分子相互作用来设计复合电极,有利于影响电化学动力学和电极电阻,从而为电池应用提供高性能电极。

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