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通过木质素-铁配位的简便组装制备杂原子掺杂和石墨化增强的木质素衍生分级多孔碳用于高压对称超级电容器

Heteroatom-doped and graphitization-enhanced lignin-derived hierarchically porous carbon via facile assembly of lignin-Fe coordination for high-voltage symmetric supercapacitors.

作者信息

Li Wei, Li Chongyang, Xu Ying, Wang Guanhua, Xu Ting, Zhang Wenli, Si Chuanling

机构信息

State Key Laboratory of Biobased Fiber Manufacturing Technology, Tianjin Key Laboratory of Pulp and Paper, Tianjin University of Science and Technology, Tianjin 300457, China.

State Key Laboratory of Biobased Fiber Manufacturing Technology, Tianjin Key Laboratory of Pulp and Paper, Tianjin University of Science and Technology, Tianjin 300457, China; Shandong Shengquan New Materials Co., LTD, Jinan 250204, China.

出版信息

J Colloid Interface Sci. 2024 Apr;659:374-384. doi: 10.1016/j.jcis.2023.12.162. Epub 2023 Dec 30.

Abstract

Lignin-derived carbon materials are widely used as electrode materials for supercapacitors. However, the electrochemical performance of these materials is limited by the surface chemistry and pore structure characteristics. Herein, a novel and sustainable strategy was proposed to prepare heteroatom-doped lignin-derived carbon material (Fe-NLC) with well-developed pore size distributions and enhanced graphitization structure via a facile lignin-Fe coordination method followed by carbonization. During carbonization, Fe in lignin-metal complexes evolve into nanoparticles, which act as templates to introduce porous structures in carbon materials. Also, the lignin-Fe coordination structure endows the material with a higher graphitization during carbonization, thereby improving the structural properties of the carbon materials. Due to the removal of FeO template, the obtained Fe-NLC possessed reasonable pore distribution and nitrigen/oxygen (N/O) functional groups, which can improve the wettability of materials and introduce pseudocapacitance. Accordingly, Fe-NLC possesses a notable specific capacitance of 264 F/g at 0.5 A/g. Furthermore, a symmetric supercapacitor Fe-NLC//Fe-NLC with a high voltage window (1.8 V) was constructed. The symmetric supercapacitor exhibits a maximum energy density of 15.97 Wh/kg at 450 W/kg, demonstrating well application prospects. This paper proposes a novel approach for preparing carbon materials via lignin-metal coordination to provide an alternative way to explore sustainable and low-cost energy storage materials.

摘要

木质素衍生的碳材料被广泛用作超级电容器的电极材料。然而,这些材料的电化学性能受到表面化学和孔结构特征的限制。在此,我们提出了一种新颖且可持续的策略,通过简便的木质素 - 铁配位方法,随后进行碳化,制备出具有发达孔径分布和增强石墨化结构的杂原子掺杂木质素衍生碳材料(Fe - NLC)。在碳化过程中,木质素 - 金属配合物中的铁演变成纳米颗粒,这些纳米颗粒充当模板,在碳材料中引入多孔结构。此外,木质素 - 铁配位结构使材料在碳化过程中具有更高的石墨化程度,从而改善了碳材料的结构性能。由于FeO模板的去除,所获得的Fe - NLC具有合理的孔分布和氮/氧(N/O)官能团,这可以提高材料的润湿性并引入赝电容。因此,Fe - NLC在0.5 A/g时具有264 F/g的显著比电容。此外,构建了具有高电压窗口(1.8 V)的对称超级电容器Fe - NLC//Fe - NLC。该对称超级电容器在450 W/kg时表现出15.97 Wh/kg的最大能量密度,展示了良好的应用前景。本文提出了一种通过木质素 - 金属配位制备碳材料的新方法,为探索可持续和低成本储能材料提供了一种替代途径。

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