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构建具有丰富活性中心的核壳异质结构用于高能量密度对称锂离子电池

Crafting Core-Shell Heterostructures with Enriched Active Centers for High-Energy-Density Symmetric Lithium-Ion Batteries.

作者信息

Wang Yonglin, Wang Jiazhi, Peng Jinxiang, Jiang Yalong, Zhu Yunhai, Yang Yingkui

机构信息

State Key Laboratory of New Textile Materials and Advanced Processing Technologies, Wuhan Textile University, Wuhan 430200, China.

School of Chemistry and Materials Science, University of Science and Technology of China, Hefei 230026, China.

出版信息

ACS Nano. 2024 Sep 3;18(35):23958-23967. doi: 10.1021/acsnano.3c11780. Epub 2024 Aug 22.

Abstract

Current research strives to create sustainable and ecofriendly organic electrode materials (OEMs) due to the rising concerns about traditional inorganic electrode materials that call for substantial resource consumption in battery manufacturing. However, OEMs often exhibit unbalanced performance, with high capacity conflicting with a long lifespan. Herein, a 2D fully conjugated covalent organic framework featuring abundant C═O and C═N groups (HTPT-COF) was strategically synthesized by coupling 2,3,7,8-tetraamino-1,4,6,9-tetraketone with hexaketocyclohexane octahydrate. It stabilizes the enriched active centers by an extended π-conjugated skeleton, thereby affording a high theoretical capacity in conjunction with potential structure stability. To further unlock the barriers of fast charge, the HTPT-COF was interwoven around highly conductive carbon nanotubes, creating a robust core-sheath heterostructure (HTPT-COF@CNT). Consequently, the crafted HTPT-COF@CNT achieves large reversible capacities of 507.7 mA h g, high-rate performance (247.8 mA h g at 20.0 A g), and long-term durability (1000 cycles). Aiming to streamline the process and cut the cost of battery manufacturing, all-organic symmetric batteries were well fabricated using HTPT-COF@CNT as both cathode and anode, demonstrating high energy/power density (up to 191.7 W h kg and 3800.3 W kg, respectively) and long-term stability over 1000 cycles. Such HTPT-COF@CNT represents a promising sustainable electrode that effectively addresses irreconcilable contradictions encountered by OEMs, boosting the development of advanced organic batteries with high capacity and cycling stability.

摘要

由于对传统无机电极材料的担忧日益增加,传统无机电极材料在电池制造中需要大量资源消耗,当前的研究致力于创造可持续且环保的有机电极材料(OEMs)。然而,OEMs通常表现出性能不平衡,高容量与长寿命相互冲突。在此,通过将2,3,7,8-四氨基-1,4,6,9-四酮与八水合六酮环己烷偶联,策略性地合成了一种具有丰富C═O和C═N基团的二维全共轭共价有机框架(HTPT-COF)。它通过扩展的π共轭骨架稳定富集的活性中心,从而在具有潜在结构稳定性的同时提供高理论容量。为了进一步突破快速充电的障碍,HTPT-COF围绕高导电碳纳米管交织,形成了坚固的核壳异质结构(HTPT-COF@CNT)。因此,精心制作的HTPT-COF@CNT实现了507.7 mA h g的大可逆容量、高倍率性能(在20.0 A g下为247.8 mA h g)和长期耐久性(1000次循环)。为了简化工艺并降低电池制造成本,使用HTPT-COF@CNT作为阴极和阳极成功制备了全有机对称电池,展示了高能量/功率密度(分别高达191.7 W h kg和3800.3 W kg)以及超过1000次循环的长期稳定性。这种HTPT-COF@CNT代表了一种有前途的可持续电极,有效地解决了OEMs遇到的不可调和的矛盾,推动了具有高容量和循环稳定性的先进有机电池的发展。

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