掺杂 N 的分层多孔碳纤维可实现电子和离子的超快传输,从而在高负载条件下储存锌离子

IF 20.2 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
Chao Wan, Jun Huang, Kui Chen, Chengfan Jiang, Qing Wu, Pengfei Huang, Qinqin Xu, Shangdong Qin, Haibo Xie
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引用次数: 0

摘要

锌离子电容器(ZIC)是一种用于便携式电子产品的前景广阔的安全储能系统,但通常受限于相对较低的面积容量和能量密度。虽然有人建议增加质量负载,但厚电极层和堵塞的孔隙不可避免地会导致电子传输和离子扩散缓慢以及活性材料的 "死体积"。在本文中,通过对嵌入电纺聚丙烯腈(PAN)纳米纤维中的纳米级唑基咪唑啉框架(ZIF-8)颗粒进行碳化,制备出了毫米级三维厚网电极,该电极由紧密交织的分层多孔 N 掺杂独立碳纳米纤维(HPNCF)组成。由于电子/离子传输速度快、离子可接触表面积大、活性材料利用率高,HPNCFs电极的质量负载可达48.67毫克/厘米-2,厚度为4.46毫米。此外,基于 HPNCFs 的 ZIC 还能产生 4.13 F cm-2 /280 F g-1 的卓越磁通量/重力容量,即使在 100 A g-1 的条件下也能达到 193.7 F g-1 的卓越速率能力,99.6 Wh kg-1 的高能量密度,以及 40,000 次循环的长期稳定性。这种直接的方法为制备可应用于电催化、能量存储/转换和其他电化学能源相关技术的高效厚电极提供了机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Hierarchical porous N-doped carbon fibers enable ultrafast electron and ion transport for Zn-ion storage at high mass loadings

Hierarchical porous N-doped carbon fibers enable ultrafast electron and ion transport for Zn-ion storage at high mass loadings

Zinc-ion capacitors (ZICs) are a promising and safe energy storage system for portable electronics but usually limited by relatively low areal capacity and energy density. Although increasing the mass loading has been suggested, thick electrode layers and clogged pores unavoidably lead to sluggish electron transport and ion diffusion as well as “dead volume” of active materials. Herein, a millimeter-scale 3D thick-network electrode, composed of closely intertwined hierarchical porous N-doped and free-standing carbon nanofibers (HPNCFs), was fabricated via carbonization of nanoscale zeolitic imidazolate framework (ZIF-8) particles embedded in electrospun polyacrylonitrile (PAN) nanofibers. With fast electron/ion transport, large ion-accessible surface area and high utilization rate of active materials, the mass loading of the HPNCFs electrode can reach 48.67 mg cm−2 with a thickness of 4.46 mm. Moreover, the HPNCFs-based ZICs can yield a superior areal/gravimetric capacity of 4.13 F cm−2 /280 F g−1, superior rate capability up to 193.7 F g−1 even at 100 A g−1, high energy density of 99.6 Wh kg−1, and long-term stability for 40,000 cycles. The straightforward approach can provide an opportunity to prepare efficient thick electrodes that could be applied in electrocatalysis, energy storage/conversion, and other electrochemical energy-related techniques.

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来源期刊
Energy Storage Materials
Energy Storage Materials Materials Science-General Materials Science
CiteScore
33.00
自引率
5.90%
发文量
652
审稿时长
27 days
期刊介绍: Energy Storage Materials is a global interdisciplinary journal dedicated to sharing scientific and technological advancements in materials and devices for advanced energy storage and related energy conversion, such as in metal-O2 batteries. The journal features comprehensive research articles, including full papers and short communications, as well as authoritative feature articles and reviews by leading experts in the field. Energy Storage Materials covers a wide range of topics, including the synthesis, fabrication, structure, properties, performance, and technological applications of energy storage materials. Additionally, the journal explores strategies, policies, and developments in the field of energy storage materials and devices for sustainable energy. Published papers are selected based on their scientific and technological significance, their ability to provide valuable new knowledge, and their relevance to the international research community.
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