生物质碳利用及制备电极材料研究进展

石莉岩, 梁精龙*, 张慧琳

化工新型材料 ›› 2025, Vol. 53 ›› Issue (1) : 27 -32.

PDF
化工新型材料 ›› 2025, Vol. 53 ›› Issue (1) : 27-32. DOI: 10.19817/j.cnki.issn1006-3536.2025.01.041
综述与专论

生物质碳利用及制备电极材料研究进展

    石莉岩, 梁精龙*, 张慧琳
作者信息 +

Research progress on biomass carbon utilization and preparation of electrode materials

  • Shi Liyan, Liang Jinglong, Zhang Huilin
Author information +
文章历史 +
PDF

摘要

随着我国农业生产稳定发展,废弃生物质碳的数量也在不断增加。由于废弃生物质碳的堆放与焚烧对环境造成严重的污染,人们越来越关注生物质碳资源的回收问题。综述了现阶段生物质碳在不同领域的应用,并对生物质碳制备电极材料的方法进行总结,并简要分析了不同方法所制备电极材料的性能与工艺特点。最后对生物质碳制备电极材料现状进行了概括并提出展望。

Abstract

With the steady development of agricultural production in China,the amount of waste biomass carbon is also increasing.Due to the serious pollution caused by the stacking and incineration of waste biomass carbon,people are paying more and more attention on the recovery of biomass carbon resources.In this paper,the applications of biomass carbon in different fields were reviewed,the methods of preparing electrode materials from biomass carbon were summarized,and the performance and process characteristics of electrode materials prepared by different methods were briefly analyzed.Finally,the current status of electrode materials prepared from biomass carbon was summarized,and the future prospects were proposed.

关键词

生物质碳 / 电极材料 / 性能 / 工艺特点

Key words

biomass carbon / electrode material / performance / process characteristics

引用本文

引用格式 ▾
生物质碳利用及制备电极材料研究进展[J]. 化工新型材料, 2025, 53(1): 27-32 DOI:10.19817/j.cnki.issn1006-3536.2025.01.041

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] 吕江涛,张燕.碳达峰、碳中和如何影响中国经济[J].决策探索(上),2021(4):34-35.
[2] 李涛.积极稳妥推进碳达峰碳中和[J].红旗文稿,2023(6):40-43.
[3] 刘庆祥,曹杰,刘亚民,等.防控土传病害生物有机肥制备新技术[J].肥料与健康,2020,47(3):57-59.
[4] 曾少毅,李坤权.窄孔径含磷棉秆生物质碳的制备及对四环素的吸附机制[J].环境科学,2023,44(3):1519-1527.
[5] 张爱华,唐娟,赖鹏英,等.光皮梾木油热解产物催化加氢制备生物燃料[J].林产化学与工业,2020,40(5):43-49.
[6] 公维佳,张鸿宇,杨柳,等.钴/氮共掺杂碳基电催化剂的制备及性能调控[J].哈尔滨工业大学学报,2022,54(2):40-49.
[7] Tian X,Yang T,He J,et al.Fungal community and cellulose-degrading genes in the composting process of Chinese medicinal herbal residues[J].Bioresource Technology,2017,241:374-383.
[8] 朱佳敏,杨霞,赵玉雪.核桃青皮生物有机肥的制备及其在百香果上的应用初探[J].中国果树,2023(4):63-67.
[9] 高亮,陈绍华,翟奎林.中药渣生物有机肥对水稻产量和效益的影响[J].现代农业科技,2017(24):3-4.
[10] Yang H,Ye S,Zeng Z,et al.Utilization of biochar for resource recovery from water:a review[J].Chemical Engineering Journal,2020,397:125502.
[11] 蔡思颖,张伟军,陈康,等.中药渣生物碳的制备及其对水中四环素的吸附特性研究[J].安全与环境工程,2022,29(3):178-186.
[12] Luo Y,Zeng L,Zhao Y,et al.Roles of ZnCl2 and FeCl3 in preparing high performance corn stover-based carbon materials for efficient removal of Cr(Ⅵ) from wastewater[J].Journal of Water Process Engineering,2022,47:102743.
[13] 晋乐乐.催化转化木质纤维素类生物质制备液态燃料[D].北京:中国科学技术大学,2020.
[14] 徐安壮.Ni/CaO催化热解中药渣制备燃气特性研究[D].鞍山:辽宁科技大学,2018.
[15] Ji C,Liu Y,Xu J,et al.Enhanced microwave absorption properties of biomass-derived carbon decorated with transition metal alloy at improved graphitization degree[J].Journal of Alloys and Compounds,2022,890:161834.
[16] Sun H,Yang Y,Chen J,et al.Biomass derived graphene-like multifold carbon nanosheets with excellent electromagnetic wave absorption performance[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2022,644:128826.
[17] Ren L,Wang Y,Chai L,et al.Hierarchical porous carbon prepared using swelling-induced biomass structure-controllable method with excellent microwave absorption performance[J].Materials Chemistry and Physics,2022,279:125739.
[18] 赵悦,李德念,阳济章,等.中药渣生物炭活化制备碳基电催化剂及其氧还原反应催化性能研究[J].材料导报,2023,37(2):1-13.
[19] Zhu C,Zhao C,Chen Z,et al.Anisotropically thermal transfer improvement and shape stabilization of paraffin supported by SiC-coated biomass carbon fiber scaffolds for thermal energy storage[J].Journal of Energy Storage,2022,46:103866.
[20] Son Y,Kim N,Lee T,et al.Calendering-compatible macroporous architecture for silicon-graphite composite toward high-energy lithium-ion batteries[J].Advanced Materials,2020,32(37):2003286.
[21] Tarascon J M,Armand M.Issues and challenges facing rechargeable lithium batteries[J].Nature,2001,414(6861):359-367.
[22] 鲍磊,白永辉,李凡.生物质碳材料的制备及应用研究进展[J].化工新型材料,2019,47(7):54-59.
[23] Zhu Y,Chen M,Li Q,et al.A porous biomass-derived anode for high-performance sodium-ion batteries[J].Carbon,2018,129:695-701.
[24] Zhang N,Liu Q,Chen W,et al.High capacity hard carbon derived from lotus stem as anode for sodium ion batteries[J].Journal of Power Sources,2018,378:331-337.
[25] Jalalah M,Sivasubramaniam S S,Aljafari B,et al.Biowaste assisted preparation of self-nitrogen-doped nanoflakes carbon framework for highly efficient solid-state supercapacitor application[J].Journal of Energy Storage,2022,54:105210.
[26] Zhu F,Cao W,Song W,et al.Biomass-derived carbon prepared through a quadruple-functional-salt approach for application in K-ion capacitors[J].Chemical Engineering Journal,2022,449:137561.
[27] Liu Y,Cheng X,Zhang S.Hierarchically porous carbon derived from tobacco waste by one-step molten salt carbonization for supercapacitor[J].Carbon Letters,2022,32(1):251-263.
[28] Yang L,Qiu J,Wang Y,et al.Molten salt synthesis of hierarchical porous carbon from wood sawdust for supercapacitors[J].Journal of Electroanalytical Chemistry,2020,856:113673.
[29] Tang D,Luo Y,Lei W,et al.Hierarchical porous carbon materials derived from waste lentinus edodes by a hybrid hydrothermal and molten salt process for supercapacitor applications[J].Applied Surface Science,2018,462:862-871.
[30] Khan A,Senthil R A,Pan J,et al.A new biomass derived rod-like porous carbon from tea-waste as inexpensive and sustainable energy material for advanced supercapacitor application[J].Electrochimica Acta,2020,335:135588.
[31] Cheng D,Tian M,Wang B,et al.One-step activation of high-graphitization N-doped porous biomass carbon as advanced catalyst for vanadium redox flow battery[J].Journal of Colloid and Interface Science,2020,572:216-226.
[32] Fitzer E,Kochling K H,Boehm H P,et al.Recommended terminology for the description of carbon as a solid (IUPAC Recommendations 1995)[J].Pure and Applied Chemistry,1995,67(3):473-506.
[33] Xia S,Cai N,Wu J,et al.Synthesis and formation mechanism of biomass-based mesoporous graphitic carbon[J].Fuel Processing Technology,2020,209:106543.
[34] Shi C,Hu L,Hou J,et al.Alkali metal boosted atom rearrangement in amorphous carbon towards crystalline graphitic belt skeleton for high performance supercapacitors[J].Energy Storage Materials,2018,15:82-90.
[35] He J,Zhang D,Wang Y,et al.Biomass-derived porous carbons with tailored graphitization degree and pore size distribution for supercapacitors with ultra-high rate capability[J].Applied Surface Science,2020,515:146020.
[36] Gong Y,Li D,Luo C,et al.Highly porous graphitic biomass carbon as advanced electrode materials for supercapacitors[J].Green Chemistry,2017,19(17):4132-4140.
[37] Gai L,Li J,Wang Q,et al.Evolution of biomass to porous graphite carbon by catalytic graphitization[J].Journal of Environmental Chemical Engineering,2021,9(6):106678.
[38] Chen C,Sun K,Wang A,et al.Catalytic graphitization of cellulose using nickel as catalyst[J].BioResources,2018,13(2):3165-3176.
[39] Yang Y,Wang J,Zuo P,et al.Layer-stacked graphite-like porous carbon for flexible all-solid-state supercapacitor[J].Chemical Engineering Journal,2021,425:130609.
[40] Thapaliya B P,Luo H,Halstenberg P,et al.Low-cost transformation of biomass-derived carbon to high-performing nano-graphite via low-temperature electrochemical graphitization[J].ACS Applied Materials & Interfaces,2021,13(3):4393-4401.
[41] Li S,Song W L,Han X,et al.Low-temperature graphitization of lignin via Co-assisted electrolysis in molten salt[J].Green Energy & Environment,2024,9(9):1449-1458.
[42] Zhu F,Song W L,Ge J,et al.High-purity graphitic carbon for energy storage:sustainable electrochemical conversion from petroleum coke[J].Advanced Science,2023,10(8):2205269.
[43] Rong T,Yuan Y,Yu H,et al.Research on anthracite-derived graphite flakes prepared by molten salt electrolysis as anode materials for high-performance lithium-ion batteries[J].Fuel Processing Technology,2023,252:107992.
[44] Peng J,Chen N,He R,et al.Electrochemically driven transformation of amorphous carbons to crystalline graphite nanoflakes:a facile and mild graphitization method[J].Angewandte Chemie,2017,129(7):1777-1781.
[45] Tu J,Wang J,Li S,et al.High-efficiency transformation of amorphous carbon into graphite nanoflakes for stable aluminum-ion battery cathodes[J].Nanoscale,2019,11(26):12537-12546.

基金资助

国家自然科学基金(52274335)

AI Summary AI Mindmap
PDF

445

访问

0

被引

导航
相关文章

AI思维导图

/