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溶剂导向异双原子碳纳米管的路易斯酸碱自组装实现锌离子存储的全面增强

All-Round Enhancement in Zn-Ion Storage Enabled by Solvent-Guided Lewis Acid-Base Self-Assembly of Heterodiatomic Carbon Nanotubes.

作者信息

Zhang Yehui, Song Ziyang, Miao Ling, Lv Yaokang, Gan Lihua, Liu Mingxian

机构信息

Shanghai Key Lab of Chemical Assessment and Sustainability, School of Chemical Science and Engineering, Tongji University, Shanghai 200092, P. R. China.

College of Chemical Engineering, Zhejiang University of Technology, Hangzhou 310014, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2023 Jul 26;15(29):35380-35390. doi: 10.1021/acsami.3c06849. Epub 2023 Jul 13.

Abstract

Designing zincophilic and stable carbon nanostructures is critical for Zn-ion storage with superior capacitive activity and durability. Here, we report solvent-guided Lewis acid-base self-assembly to customize heterodiatomic carbon nanotubes, triggered by the reaction between iron chloride and α,α'-dichloro--xylene. In this strategy, modulating the solvent-precursor interaction through the optimization of solvent formula stimulates differential thermodynamic solubilization, growth kinetics, and self-assembly behaviors of Lewis polymeric chains, thereby accurately tailoring carbon nanoarchitectures to evoke superior Zn-ion storage. Featured with open hollow interiors and porous tubular topologies, the solvent-optimized carbon nanotubes allow low ion-migration barriers to deeply access the built-in zincophilic sites by high-kinetics physical Zn/CFSO adsorption and robust chemical Zn redox with pyridine/carbonyl motifs, which maximizes the spatial capacitive charge storage density. Thus, as-designed heterodiatomic carbon nanotube cathodes provide all-round improvement in Zn-ion storage, including a high energy density (140 W h kg), a large current activity (100 A g), and an exceptional long-term cyclability (100,000 cycles at 50 A g). This study provides appealing insights into the solvent-mediated Lewis pair self-assembly design of nanostructured carbons toward advanced Zn-ion energy storage.

摘要

设计亲锌且稳定的碳纳米结构对于实现具有卓越电容活性和耐久性的锌离子存储至关重要。在此,我们报道了一种溶剂引导的路易斯酸碱自组装方法,用于定制异双原子碳纳米管,该方法由氯化铁与α,α'-二氯对二甲苯之间的反应引发。在这一策略中,通过优化溶剂配方来调节溶剂 - 前驱体相互作用,会刺激路易斯聚合物链的不同热力学溶解、生长动力学和自组装行为,从而精确地定制碳纳米结构,以实现卓越的锌离子存储。经溶剂优化的碳纳米管具有开放的中空内部结构和多孔管状拓扑结构,通过高动力学的物理Zn/CFSO吸附和与吡啶/羰基基团的稳健化学Zn氧化还原反应,使离子迁移势垒较低,能够深入到达内置的亲锌位点,从而使空间电容电荷存储密度最大化。因此,所设计的异双原子碳纳米管阴极在锌离子存储方面实现了全面提升,包括高能量密度(140 W h kg)、大电流活性(100 A g)以及出色的长期循环稳定性(在50 A g下循环100,000次)。本研究为面向先进锌离子储能的纳米结构碳的溶剂介导路易斯对自组装设计提供了有吸引力的见解。

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