用于高性能超级电容器的金属有机框架和木质碳表面改性复合材料。

IF 9.4 1区 化学 Q1 CHEMISTRY, PHYSICAL Journal of Colloid and Interface Science Pub Date : 2024-10-01 DOI:10.1016/j.jcis.2024.09.247
Wanning Xiong, Linlin Zhao, Jie Ouyang, Yi Tian, Lixin Wang, Mengyao Li, Yuzhu Wang, Mengting Cheng, Qingquan Sheng, Zejun Li, Jianhua Luo, Yongfeng Luo
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The sequential modification steps include carbonization, oxidation activation, and acid-etching. The Ni/NiO/CoO-CW-4 electrode, made by acid-etching carbonized wood (CW) doped with nickel, nickel oxide, and cobalt oxide for 4 h, has excellent surface area and pore size distribution, high graphitization degree, and exceptional conductivity. Furthermore, surface modification optimizes the surface chemistry and phase composition, resulting in a 0.8 mm thick Ni/NiO/CoO-CW-4 electrode with an exceptionally high areal capacitance of 16.76 F cm<sup>-2</sup> at 5 mA cm<sup>-2</sup>. Meanwhile, the fabricated solid-state supercapacitor achieves an impressive energy density of 0.67 mWh cm<sup>-2</sup> (8.38 mWh cm<sup>-3</sup>) at 2.5 mW cm<sup>-2</sup> (31.25 mW cm<sup>-3</sup>), surpassing representative modified wood-based carbon electrodes by approximately 2-7 times. 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引用次数: 0

摘要

木质碳的可再生性、高含碳量和独特的分层结构使其成为能量存储的最佳自支撑电极。然而,由于比表面积和导电性缺陷的限制,木质碳电极在实现令人满意的电荷存储方面面临着挑战。因此,探索多样化的有效表面策略对于提高电化学储能性能至关重要。在此,一种提高美观性的装饰技术是在木材气管内壁上应用含有镍和钴的金属有机框架(Ni/Co-MOF)。依次进行的改性步骤包括碳化、氧化活化和酸蚀。掺杂了镍、氧化镍和氧化钴的碳化木材(CW)经酸蚀 4 小时后制成的镍/氧化镍/氧化钴-CW-4 电极具有极佳的表面积和孔径分布、高石墨化程度和优异的导电性。此外,表面改性优化了表面化学成分和相组成,使得 0.8 mm 厚的 Ni/NiO/CoO-CW-4 电极在 5 mA cm-2 电流条件下具有 16.76 F cm-2 的超高等值电容。同时,所制造的固态超级电容器在 2.5 mW cm-2 (31.25 mW cm-3)时的能量密度达到了惊人的 0.67 mWh cm-2(8.38 mWh cm-3),比具有代表性的改性木基碳电极高出约 2-7 倍。此外,这种超级电容器还具有超强的稳定性,在 10,000 次循环后仍能保持 96.21 % 的电容。与大多数改性木质碳基超级电容器的典型参数相比,本文介绍的参数有了显著改善,有效解决了木碳复合材料能量密度低和循环性能不理想的常见问题。
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Surface-modified composites of metal-organic framework and wood-derived carbon for high-performance supercapacitors.

The renewable nature, high carbon content, and unique hierarchical structure of wood-derived carbon make it an optimal self-supporting electrode for energy storage. However, the limitations in specific surface area and electrical conductivity defects pose challenges to achieving satisfactory charge storage in wood-derived carbon electrodes. Therefore, exploring diverse and effective surface strategies is crucial for enhancing the electrochemical energy storage performance. Herein, a decoration technique for enhancing aesthetic appeal involves applying a metal-organic framework (Ni/Co-MOF) containing nickel and cobalt onto the inner walls of wood tracheids. The sequential modification steps include carbonization, oxidation activation, and acid-etching. The Ni/NiO/CoO-CW-4 electrode, made by acid-etching carbonized wood (CW) doped with nickel, nickel oxide, and cobalt oxide for 4 h, has excellent surface area and pore size distribution, high graphitization degree, and exceptional conductivity. Furthermore, surface modification optimizes the surface chemistry and phase composition, resulting in a 0.8 mm thick Ni/NiO/CoO-CW-4 electrode with an exceptionally high areal capacitance of 16.76 F cm-2 at 5 mA cm-2. Meanwhile, the fabricated solid-state supercapacitor achieves an impressive energy density of 0.67 mWh cm-2 (8.38 mWh cm-3) at 2.5 mW cm-2 (31.25 mW cm-3), surpassing representative modified wood-based carbon electrodes by approximately 2-7 times. Additionally, the supercapacitor demonstrates exceptional stability, maintaining 96.21 % of capacitance even over 10,000 cycles. The parameters presented here demonstrate a significant improvement compared to those typically observed in most modified wood-derived carbon-based supercapacitors, effectively addressing common issues of low energy density and suboptimal cycling performance with wood carbon composites.

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来源期刊
CiteScore
16.10
自引率
7.10%
发文量
2568
审稿时长
2 months
期刊介绍: The Journal of Colloid and Interface Science publishes original research findings on the fundamental principles of colloid and interface science, as well as innovative applications in various fields. The criteria for publication include impact, quality, novelty, and originality. Emphasis: The journal emphasizes fundamental scientific innovation within the following categories: A.Colloidal Materials and Nanomaterials B.Soft Colloidal and Self-Assembly Systems C.Adsorption, Catalysis, and Electrochemistry D.Interfacial Processes, Capillarity, and Wetting E.Biomaterials and Nanomedicine F.Energy Conversion and Storage, and Environmental Technologies
期刊最新文献
Mo2C-Co heterostructure with carbon nanosheets decorated carbon microtubules: Different means for high-performance lithium-sulfur batteries. Multiple-perspective design of hollow-structured cerium-vanadium-based nanopillar arrays for enhanced overall water electrolysis. Electrocatalysis of Co/CoxOy nanofilms supported by synchronously nitrogen-doped Ketjenblack carbon towards oxygen reduction reaction. Surface-modified composites of metal-organic framework and wood-derived carbon for high-performance supercapacitors. Reinforced interfacial coupling effect of NiO/Ni2P by Fe doping for boosting water splitting.
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