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N-S 共掺杂木质素基碳磁性纳米粒子作为高性能超级电容器和电磁波吸收剂。

N-S co-doping lignin-based carbon magnetic nanoparticles as high performance supercapacitor and electromagnetic wave absorber.

机构信息

Liaoning Key Laboratory of Lignocellulose Chemistry and Biomaterials, Dalian Polytechnic University, Dalian, Liaoning 116034, China.

Institute for Catalysis (ICAT) and Graduate School of Chemical Sciences and Engineering, Hokkaido University, N21W10, Kita-ku, Sapporo 001-0021, Japan.

出版信息

Int J Biol Macromol. 2023 Jul 1;242(Pt 4):125032. doi: 10.1016/j.ijbiomac.2023.125032. Epub 2023 May 26.

Abstract

Recently, multifunctional lignin-based materials are gaining more and more attention due to their great potential for low-cost and sustainability. In this work, to obtain both an excellent supercapacitor electrode and an outstanding electromagnetic wave (EMW) absorber, a series of multifunctional nitrogen-sulphur (N-S) co-doped lignin-based carbon magnetic nanoparticles (LCMNPs) had been successfully prepared through Mannich reaction at different carbonization temperature. As compared with the directly carbonized lignin carbon (LC), LCMNPs had more nano-size structure and higher specific surface area. Meanwhile, with the increase of carbonization temperature, the graphitization of the LCMNPs could also be effectively improved. Therefore, LCMNPs-800 displayed the best performance advantages. For the electric double layer capacitor (EDLC), the optimal specific capacitance of LCMNPs-800 reached 154.2 F/g, and the capacitance retention after 5000 cycles was as high as 98.14 %. When the power density was 2204.76 W/kg, the energy density achieved 33.81 Wh/kg. In addition, N-S co-doped LCMNPs also exhibited strong electromagnetic wave absorption (EMWA) ability, whose the minimum reflection loss (RL) value of LCMNPs-800 was realized -46.61 dB at 6.01 GHz with an thickness of 4.0 mm, and the effective absorption bandwidth (EAB) was up to 2.11 GHz ranging from 5.10 to 7.21 GHz, which could cover the C-band. Overall, this green and sustainable approach is a promising strategy for the preparation of high-performance multifunctional lignin-based materials.

摘要

最近,由于多功能木质素基材料具有低成本和可持续性的巨大潜力,因此越来越受到关注。在这项工作中,为了获得既出色的超级电容器电极又出色的电磁波(EMW)吸收剂,通过曼尼希反应在不同碳化温度下成功制备了一系列多功能氮硫(N-S)共掺杂木质素基碳磁性纳米粒子(LCMNPs)。与直接碳化木质素碳(LC)相比,LCMNPs具有更多的纳米级结构和更高的比表面积。同时,随着碳化温度的升高,LCMNPs的石墨化也可以得到有效改善。因此,LCMNPs-800 表现出最佳的性能优势。对于双电层电容器(EDLC),LCMNPs-800 的最佳比电容达到 154.2 F/g,经过 5000 次循环后,电容保持率高达 98.14%。当功率密度为 2204.76 W/kg 时,能量密度达到 33.81 Wh/kg。此外,N-S 共掺杂 LCMNPs 还表现出很强的电磁波吸收(EMWA)能力,LCMNPs-800 的最小反射损耗(RL)值在 6.01 GHz 时达到-46.61 dB,厚度为 4.0 mm,有效吸收带宽(EAB)高达 2.11 GHz,范围为 5.10 至 7.21 GHz,可覆盖 C 波段。总体而言,这种绿色可持续的方法是制备高性能多功能木质素基材料的有前途的策略。

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