Significant performance enhancement of Zn-ion hybrid supercapacitors based on microwave-assisted pyrolyzed active carbon via synergistic effect of NaHCO3 activation and CNT networks

IF 7.1 3区 材料科学 Q1 GREEN & SUSTAINABLE SCIENCE & TECHNOLOGY Materials Today Sustainability Pub Date : 2024-09-05 DOI:10.1016/j.mtsust.2024.100977
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Abstract

Zinc-ion hybrid supercapacitors (ZIHSCs) represents a promising technological approach for large-scale energy storage with the combined advantages of supercapacitors and zinc-ion batteries. Unfortunately, it is still challengeable to quickly fabricate low-cost, high-performance carbonaceous cathode materials at relatively low temperature. To address such issues, herein, taking waste Eucommia ulmoides Oliver (EUO) wood as an example, we present a novel microwave-assisted carbonization (MWC) approach at relatively low temperature to quickly prepare active carbon, and we present a synergistic strategy to significantly enhance the electrochemical performance by introducing sodium bicarbonate activation (SA) and constructing conductive carbon nanotubes (CNT) networks. The MWC-SA@CNT hybrid exhibits outstanding specific capacitance of 344.2 F/g at 0.2 A/g within three-electrode system, much better than conventional high-temperature pyrolyzed AC, MWC carbon, and MWC-SA carbon. The superior performance of MWC-SA@CNT can be attributed to the synergistic effect of its large specific surface area of 1102.7 m2/g, high mesoporous percentage of 53.5%, and rich –OH and CO groups due to microwave-assisted carbonization and sodium bicarbonate activation, and rich electron transport paths due to the presence of CNT networks. Furthermore, ZIHSCs assembled by MWC-SA@CNT cathode could delivers impressive performance with excellent capacity (194.37 mA h/g at current density of 1 A/g), energy density (142.30 Wh/kg), and durability (capacitance retention rate of 97.65% after 5000 cycles). This work offers a rapid and low-temperature method for preparing wood-based active carbon with rich nanopores and strong conductivity to improve performance of Zinc ion storage.

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通过 NaHCO3 活化和 CNT 网络的协同效应显著提高基于微波辅助热解活性炭的 Zn 离子混合超级电容器的性能
锌-离子混合超级电容器(ZIHSCs)兼具超级电容器和锌-离子电池的优点,是一种前景广阔的大规模储能技术方法。遗憾的是,在相对较低的温度下快速制备低成本、高性能的碳质阴极材料仍是一项挑战。为了解决这些问题,本文以废弃杜仲(EUO)木材为例,介绍了一种在相对低温下快速制备活性碳的新型微波辅助碳化(MWC)方法,并提出了一种通过引入碳酸氢钠活化(SA)和构建导电碳纳米管(CNT)网络来显著提高电化学性能的协同策略。在三电极系统中,MWC-SA@CNT 杂化物在 0.2 A/g 条件下表现出 344.2 F/g 的出色比电容,远远优于传统的高温热解 AC、MWC 碳和 MWC-SA 碳。MWC-SA@CNT 的优异性能可归因于其1102.7 m2/g的大比表面积、53.5%的高介孔率、微波辅助碳化和碳酸氢钠活化产生的丰富的-OH和CO基团以及CNT网络的存在产生的丰富的电子传输路径的协同效应。此外,通过 MWC-SA@CNT 阴极组装的 ZIHSCs 还能提供出色的性能,包括出色的容量(电流密度为 1 A/g 时为 194.37 mA h/g)、能量密度(142.30 Wh/kg)和耐用性(5000 次循环后电容保持率为 97.65%)。这项工作提供了一种快速、低温制备具有丰富纳米孔隙和强导电性的木基活性碳的方法,从而提高了锌离子存储的性能。
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来源期刊
CiteScore
5.80
自引率
6.40%
发文量
174
审稿时长
32 days
期刊介绍: Materials Today Sustainability is a multi-disciplinary journal covering all aspects of sustainability through materials science. With a rapidly increasing population with growing demands, materials science has emerged as a critical discipline toward protecting of the environment and ensuring the long term survival of future generations.
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