Please wait a minute...
材料导报  2026, Vol. 40 Issue (10): 25060066-18    https://doi.org/10.11896/cldb.25060066
  无机非金属及其复合材料 |
高性能超级电容器生物炭电极性能增强策略综述
张金才1,*, 李美萍2, Subramanian Sunderrajan3,4, Vishnu Vijay Kumar5
1 山西大学资源与环境工程研究所,国家环境保护废旧资源高效利用重点实验室,太原 030006
2 山西大学生命科学学院,太原 030006
3 新加坡国立大学机械工程部,纳米技术与可持续中心,新加坡
4 萨维沙大学萨维沙医药与技术科学研究所,萨维沙牙科医学学院口腔修复科,印度 金奈 600077
5 纽约大学阿布扎比分校(NYUAD)工程学院,阿联酋 阿布扎比
A Critical Review of Biochar Electrode Performance Enhancement Strategies for High-performance Supercapacitors
ZHANG Jincai1,*, LI Meiping2, Subramanian Sunderrajan3,4, Vishnu Vijay Kumar5
1 Institute of Resources and Environmental Engineering, State Environmental Protection Key Laboratory of Efficient Utilization of Waste Resources, Shanxi University, Taiyuan 030006, China
2 School of Life Science, Shanxi University, Taiyuan 030006, China
3 Center for Nanotechnology & Sustainability, Department of Mechanical Engineering, National University of Singapore, Singapore
4 Department of Prosthodontics, Saveetha Dental College and Hospitals, Saveetha Institute of Medical & Technical Science, Saveetha University, Chennai 600077, India
5 Division of Engineering, New York University Abu Dhabi (NYUAD), Abu Dhabi, United Arab Emirates
下载:  全 文 ( PDF ) ( 29736KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 由于资源限制和环境挑战,全球对可持续能源解决方案的需求日益增加。生物炭是一种很有前途的储能电极材料,具有潜在的成本效益和环境友好性。然而,传统的热解生物炭生产存在显著的性能限制。这促使研究人员探索改进生物炭电学和化学性质的创新方法。本文综述了生物炭在储能系统中的应用,特别强调了超级电容器技术,批判性地分析了提高生物炭性能的三种关键方法,并对当前的研究策略进行了详细的分析。通过综合现有文献,对生物炭在可再生能源技术中的潜力进行了细致的概述,系统地评估了开发更有效的生物炭材料的最新科学方法,突出了可持续材料和储能解决方案之间的关键交叉点。此外,为未来的科学研究提出了有针对性的建议,旨在推进高性能生物炭技术的发展。通过对当前研究的批判性评估,本文有助于对可持续能源存储方法的理解,并为未来的技术创新确定了有希望的途径。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
张金才
李美萍
Subramanian Sunderrajan
Vishnu Vijay Kumar
关键词:  生物质  生物炭  可持续材料  能源存储  超级电容器    
Abstract: The global demand for sustainable energy solutions has intensified due to resource limitations and environmental challenges. Biochar presents a promising electrode material for energy storage devices, offering a potential cost-effective and environmentally friendly alternative. Howe-ver, traditional biochar production through pyrolysis reveals significant performance constraints. This has prompted researchers to explore innovative approaches for improving biochar’s electrical and chemical properties. This comprehensive review examines biochar’s application in energy storage systems, with particular emphasis on supercapacitor technologies. The study critically analyzes three key methods for enhancing biochar’s performance, providing a detailed investigation of current research strategies. By synthesizing existing literature,this review offers a nuanced overview of biochar’s potential in renewable energy technologies. This review systematically evaluates recent scientific approaches to developing more effective biochar materials, highlighting the critical intersection between sustainable materials and energy storage solutions. Additionally, this work presents targeted recommendations for future scientific investigations, aiming to advance the development of high-performance biochar technologies. Through a critical assessment of current research, this review contributes to our understanding of sustainable energy storage approaches and identifies promising pathways for future technological innovation.
Key words:  biomass    biochar    sustainable material    energy storage    supercapacitor
发布日期:  2026-06-03
ZTFLH:  TM53  
基金资助: 国家留学基金(CSC202208140067);山西省忻州市重点研发项目(2024203);山西大学杏花村开放基金(XCSXU-KF-202409)
引用本文:    
张金才, 李美萍, Subramanian Sunderrajan, Vishnu Vijay Kumar. 高性能超级电容器生物炭电极性能增强策略综述[J]. 材料导报, 2026, 40(10): 25060066-18.
ZHANG Jincai, LI Meiping, Subramanian Sunderrajan, Vishnu Vijay Kumar. A Critical Review of Biochar Electrode Performance Enhancement Strategies for High-performance Supercapacitors. Materials Reports, 2026, 40(10): 25060066-18.
链接本文:  
https://www.mater-rep.com/CN/10.11896/cldb.25060066  或          https://www.mater-rep.com/CN/Y2026/V40/I10/25060066
1 Ismail I S, Othma M F H, Rashidi N A, et al. Biomass Conversion Biorefinery, 2023, 1.
2 Liu W J, Jiang H, Yu H Q. Energy & Environmental Science, 2019, 12, 1751.
3 Ehsani A, Parsimehr H. Advances in Colloid and Interface Science, 2020, 284, 102263.
4 Zhang W L, Zhang F, Ming F W, et al. EnergyChem, 2019, 1, 100012.
5 Hao A J, Song C X, Guo A Z, EnergyChem, 2019, 1, 100004.
6 Li J, Song X, Zhang W, et al. Chemistry—a European Journal, 2020, 26, 3326.
7 Zheng S, Li Q, Xue H, et al. National Science Review, 2020, 7, 305.
8 Ramasubramanian B, Sundarrajan S, Rao R P, et al. Energy & Environmental Science, 2022, 15, 4928.
9 Ramasubramanian B, Sundarrajan S, Chellappan V, et al. Batteries, 2022, 8, 133.
10 Kumar P S, Sundaramurthy J, Sundarrajan S, et al. Energy & Environmental Science, 2014, 7, 3192.
11 Darbar D, Reddy M V, Sundarrajan S, et al. Materials Research Bulletin, 2016, 73, 369.
12 Siwal S S, Zhang Q, Devi N, et al. Polymers, 2020, 12, 5.
13 Rolison D R, Long J W, Lytle J C, et al. Chemical Society Reviews, 2009, 38, 226.
14 Cheng B H, Zeng R J, Jiang H. Bioresource Technology, 2017, 246, 224.
15 Many D J J, Gascó G. Biochar as a renewable-based material: with applications in agriculture, the environment and energy, World Scientific Publishing Company, 2020.
16 Magnacca G, Guerretta F, Vizintin A, et al. Applied Surface Science, 2018, 427, 883.
17 Definition P, Guidelines S. Standardized product definition and product testing guidelines for biochar that is used in soil, International Biochar Initiative, 2012.
18 Zhang Z, Zhu Z, Shen B, et al. Energy, 2019, 171, 581.
19 Hyland C, Sarmah A K. Advances and Applications, 2014, 25, 435.
20 Meyer S, Glaser B, Quicker P. Environmental Science Technology, 2011, 45, 9473.
21 Amalina F, Razak A S A, Krishnan S, et al. Journal of Hazardoous Materials Advances, 2022, 7, 100134.
22 Yaman H A. Journal of Thermal Science and Engineering Applications, 2019, 11, 011006.
23 Zhang J J, Zhang X L. Biomass, biopolymer-based materials, and bioe-nergy, Woodhead Publishing, 2019, pp.327.
24 Tripathi M, Sahu J N, Ganesan P. Renewable & Sustaiable Energy Reviews, 2016, 55, 467.
25 Ayhan, Demirbas. Journal of Analytical and Applied Pyrolysis, 2004, 72, 243.
26 Liu W J, Jiang H, Yu H Q. Chemical Reviews, 2015, 115, 12251.
27 Arni S A. Renewable Energy, 2017, 124, 197.
28 Zhang Q, Li Q F, Zhang L X, et al. Energy, 2017, 134, 301.
29 Wang G, Zhang J, Shao J, et al. Energy, 2016, 114, 143.
30 Qian K, Kumar A, Zhang H, et al. Renewable Suatainable Energy Review, 2015, 42, 1055.
31 Mauro G, Mattia B, Carlo R, et al. In:Conference on Bio-char. Cetraro, Italy, 2019.
32 Lee J, Lee K, Sohn D, et al. Energy, 2018, 153, 913.
33 Libra J A, Ro K S, Claudia K, et al. Biofuels, 2011, 2, 71.
34 Jerry A M, Kazuhiro M, Paredes L S. Industrial & Engineering Chemistry Research, 2003, 42, 3690.
35 Bridgwater A V. International Journal of Global Energy Issues, 2010, 27, 160.
36 Yan W, Acharjee T C, Coronella C J, et al. Environmental Progress & Sustainable Energy, 2009, 28, 435.
37 Woolf D, Amonette J E, Street-Perrott F A, et al. Nature Communication, 2010, 1, 1.
38 Antal M J, Gronli M G. Industrial & Engineering Chemistry Research, 2004, 45, 1619.
39 Bard, Edouard. Science, 2001, 292, 2443.
40 Caguiat J N, Arpino G, Krigstin S G, et al. Biomass Bioenergy, 2018, 118, 126.
41 Ma Y, Yao D, Liang H, et al. Electrchimica Acta, 2020, 352, 136452.
42 Tripathi M, Bhatnagar A, Pandey K K, et al. Journal of the Electroche-mical Society, 2021, 168, 050530.
43 Bouchelta C, Medjram M S, Bertrand O, et al. Journal of Analytical and Applied Pyrolysis, 2008, 82, 70.
44 Nabais J M V, Nune S P, Carrott P J M, et al. Fuel Processing Technology, 2008, 89, 262.
45 Chen W, Zhang H, Huang Y, et al. Journal of Materials Chemistry, 2010, 20, 4773.
46 Yu L, Bran N, Sakaushi K. Carbon, 2013, 61, 245.
47 Kubo S, White R J, Tauer K, et al. Chemistry of Materials, 2013, 25, 4781.
48 Aworn A, Thiravetyan P, Nakbanpote W. Journal of Analytical and Applied Pyrolysis, 2008, 82, 279.
49 Dong Z, Chen C, Wen K, et al. Polymers (Basel), 2022, 14(195), 1.
50 Thengane S K, Bandyopadhyay S. Clean Technologies Environmental Po-licy, 2020, 22, 5.
51 Yuan X Z, Dissanayake P D, Gao B, et al. Journal of Environmental Management, 2021, 296, 113128.
52 Cuong D V, Matsagar B M, Lee M, et al. Renewable & Sustainabale Energy Reviews, 2021, 145, 111029.
53 Abioye A M, Ani F N. Renewable & Sustainable Energy Reviews, 2015, 52, 1282.
54 Reza M T, Lynam J G, Vasquez V R, et al. Environmental Progress & Sustainable Energy, 2012, 31, 225.
55 Norouzi O, Maria F D, Dutta A, et al. Journal of Energy Storage, 2020, 29, 101291.
56 Osman A I, Fawzy S, Farghali M, et al. Environmental Chemistry Letters, 2022, 20, 2385.
57 Fu M, Chen W, Ding J X, et al. Journal of Alloys and Compounds, 2018, 782, 352.
58 Gao H Q. Chemical Engineering Journal, 2020, 402, 126171.
59 Peng L, Liang Y, Huang J, et al. ACS Sustainable Chemistry & Engineering, 2019, 7, 10393.
60 Gao Y, Zhang W, Yue Q, et al. Journal of Power Sources, 2014, 270, 403.
61 Qiu Z P, Wang Y S, Xu B, et al. Journal of Power Sources, 2018, 376, 82.
62 Huang W, Zhang H, Huang Y, et al. Carbon, 2011, 49, 838.
63 Genovese M, Lian K. Journal of Materials Chemistry A, 2017, 5, 3939.
64 Tan H, Wang X N, Jia D D, et al. Journal of Materials Chemistry A, 2017, 5, 2580.
65 Giannakopoulos S, Vakros J, Manariotis I D, et al. Materials (Basel), 2022, 16(43), 1.
66 Zhao G, Chen C, Yu D, et al. Nano Energy, 2018, 47, 547.
67 Lima R, Reis G S D, Thyrel M, et al. Nanomaterials (Basel), 2022, 12(866), 1.
68 Rufford T E, Hulicova-Jurcakova D, Zhu Z, et al. Electrochemistry Communications, 2008, 10, 1594.
69 Rufford T E, Hulicova-Jurcakova D, Khosla K, et al. Journal of Power Sources, 2010, 195, 912.
70 Shrestha L K, Shrestha R G, Maji S, et al. Nanomaterials-Basel, 2020, 10(728), 1.
71 Taer E, Susanti A, Taslim R, et al. Journal of Physics Conference Series, 2021, 1811, 012135.
72 Wan L, Hu J, Liu J, et al. Journal of Alloys and Compounds, 2021, 859, 158390.
73 Saliu O D, Adeniyi A, Mamo M, et al. Electrochemical Communications, 2022, 139, 107308.
74 Lei W, Yang B, Sun Y, et al. Journal of Power Sources, 2021, 488, 229455.
75 Li X, Xing W, Zhuo S, et al. Bioresources Technology, 2011, 102, 1118.
76 Lin Y, Li F, Zhang Q, et al. Ionics, 2022, 28, 2525.
77 Ranola S, Mohan D, Masek O, et al. Engineered biochar, fundamentals, preparation, characterization and applications, Sprink, 2022.
78 Benis K Z, Damuchali A M, Soltan J, et al. Science of the Total Environment, 2020, 739, 139750.
79 Chang C, Li M, Wang H, et al. Journal of Materials Chemistry A, 2019, 7, 19939.
80 Huang J, Chen L, Dong H, et al. Electrochimic Acta, 2017, 258, 504.
81 Lin Y, Chen Z, Yu C, et al. ACS Sustainable Chemistry & Engineering, 2019, 7, 3389.
82 Zhang S, Li Y, Du Y, et al. Diamond and Related Materials, 2022, 130, 109507.
83 Zhao N, Deng L, Luo D W, et al. Applied Surface Science, 2020, 526, 1446696.
84 Jiang B, Cao L, Yuan Q, et al. Materials (Basel, Switzerland), 2022, 15(924), 1.
85 Yang S, Wang S L, Liu X, et al. Carbon, 2019. 147, 540.
86 Mehdi R, Naqvi S R, Khoja A H, et al. Fuel, 2023, 348, 128529.
87 Omar N, Abdullah E C, Petrus A A, et al. Biomass Conversion and Biorefinery, 2021, 13, 2279.
88 Yuan X, Zhang Y, Yan Y, et al. Chemical Engineering Journal, 2019, 393, 12124.
89 Yuan C, Lin H, Lu H, et al. Applied Energy, 2016, 178, 260.
90 Zhou B T, Sui Y W, Qi J Q, et al. Journal of Electronic Materials, 2019, 48, 3026.
91 Norouzi O, Pourhosseini S E M, Naderi H R, et al. Science Reports, 2021, 11, 5387.
92 Wesley R J, Durairaj A, Ramanathan S, et al. Diamond and Related Materials, 2021, 115, 108360.
93 Zhang Y, Yang S, Wang S, et al. Energy Storage Materials, 2019, 18, 447.
94 Adhamash E, Pathak R, Qiao Q, et al. RSC Advances, 2020, 10, 29910.
95 Teng Z, Han K, Li J, et al. Ultrasonics Sonochemistry, 2020, 60, 104756.
96 Zhi M J, Xiang C C, Li J T, et al. Nanoscale, 2013, 5, 72.
97 Chen K, Liu J, Bian H, et al. Nanotechnology, 2020, 31, 335713.
98 Li X, Wei B. Nano Energy, 2012, 2, 159.
99 Dai Y F, He S S, Yu L B, et al. Journal of Physics and Chemistry of So-lids, 2019, 129, 122.
100 Pan Z, Zhi H, Qiu Y, et al. Nano Energy, 2018, 46, 266.
101 Xiong C L, Zhong W B, Zou Y B, et al. Electrochim Acta, 2016, 211, 941.
102 Hou J H, Cao C B, Idrees F, et al. ACS Nano, 2015, 9, 2556.
103 Zhang Y L, Sun C, Tang Z S. Diamond and Related Materials, 2019, 97, 107455.
104 Wang S, Dong L, Li Z, et al. International Journal of Biological Macromolecules, 2020, 164, 4095.
105 Shu Y, Maruyama J, Iwasaki S, et al. Journal of Power Sources, 2017, 364, 374.
106 Yuan X, Xiao J, Yilmaz M, et al. Separation and Purification Technology, 2022, 299, 121719.
107 Gandla D, Wu X, Zhang F, et al. ACS Omega, 2021, 6, 7615.
108 Shang Z, An X Y, Zhang H, et al. Carbon, 2020, 161, 62.
109 Meng X, Jia S, Mo L, et al. Journal of Materials Science, 2020, 55, 7417.
110 Song J, Shen W Z, Wang J G, et al. ChemElectroChem, 2018, 5, 1451.
111 Zhang W, Zou Y, Yu C, et al. Journal of Power Sources, 2019, 439, 227067.
112 Sun J, Niu J, Liu M, et al. Applied Surface Science, 2017, 427, 807.
113 Wei T, Zhang Q, Wei X, et al. Science Reports, 2016, 6, 22646.
114 Wan L, Xiao R, Liu J X, et al. Applied Surface Science, 2020, 518, 146265.
115 Li Y, Zheng K, Shah S A A, et al. RSC Advances, 2017, 7, 43356.
116 Hu X R, Li J F, Zhang Y, et al. Chemical Physics, 2019, 525, 110383.
117 Zhao Y Y, Dong C X, Sheng L Z, et al. ACS Sustainable Chemistry and Engineering, 2020, 8, 8664.
118 Song T T, Zhao Y H, Chen C X, et al. Journal of Energy Storage, 2024, 98, 113148.
119 Chen W J, Liu Y F, Zhang X Y, et al. Journal of Power Sources, 2025, 654, 237814.
[1] 周含雨, 游学极, 刘强, 代朝猛, 文言, 黄霄伊. 生物炭增效铁基物质对有机污染修复效能研究进展[J]. 材料导报, 2026, 40(9): 25050145-7.
[2] 杨东东, 李芬, 杨莹, 王瑞莹, 邢智超, 韩明洪. 机器学习在生物炭生产及吸附领域中的应用研究进展[J]. 材料导报, 2026, 40(9): 25030238-12.
[3] 李蓉江, 孙立贤, 徐芬, 石斌, 陈悦, 彭璇, 杜毛湛. 氮磷共掺杂罗汉果芯衍生多孔碳助力高性能锂硫电池[J]. 材料导报, 2026, 40(8): 25040122-7.
[4] 陈悦, 徐芬, 孙立贤, 余楚钰, 冯俞霖, 李蓉江, 徐如丹, 杜毛湛, 胡星雨. 具有异质结构的多元过渡金属氧化物在超级电容器中的储能应用[J]. 材料导报, 2026, 40(8): 25040081-10.
[5] 彭思源, 漆小鹏. 硫酸酸浸改性修饰花生壳基硬碳负极材料的制备和储钠性能的研究[J]. 材料导报, 2026, 40(7): 25030015-8.
[6] 徐群娜, 赵源, 徐小雨, 路佳琪, 邓燕婷, 蒲瑶. 生物质基导电油墨研究进展[J]. 材料导报, 2026, 40(7): 25030213-8.
[7] 贺格平, 傅泽果, 杨全, 鲍晨皓, 徐锐, 李梦轩, 井格格, 苟文浩. 基于聚乙烯吡咯烷酮表面活性剂的超级电容器电极材料ZnWO4@rGO的制备及性能研究[J]. 材料导报, 2026, 40(6): 25040062-8.
[8] 张开洋, 管友森, 易鹏, 黄宇, 陈全, 吴敏. 溶解性有机质介导和屏蔽生物炭降解有机污染物的研究进展[J]. 材料导报, 2026, 40(6): 25020167-9.
[9] 胡慧, 陈宇, 张亚梅. 生物炭在多功能涂层改性中的研究进展[J]. 材料导报, 2026, 40(5): 25090003-15.
[10] 寇长江, 许舒翔, 花倩, 吴正光, 康爱红. 面向路面径流重金属的生物炭复合滤料制备与净化机理研究[J]. 材料导报, 2026, 40(5): 25070056-12.
[11] 薛翠真, 李肖克, 苏丽, 冯琼, 乔宏霞. 基于核磁共振技术的生物炭水泥砂浆强度及孔结构性能研究[J]. 材料导报, 2026, 40(5): 25060140-8.
[12] 席歆玥, 张延生, 杨云波, 李焱, 徐宏殷, 王娟, 郑元勋. 绿筑智建:农业生物质纤维强化再生水泥3D打印绿色建材研究[J]. 材料导报, 2026, 40(5): 24080146-7.
[13] 赵冰琴, 朱俊豪, 高儒章, 胡鑫凯, 吴欣, 夏栋, 赵自超, 许文年. 生物炭分层添加对黄河底泥基植生基材入渗特征和养分固持的影响[J]. 材料导报, 2026, 40(5): 25060109-8.
[14] 何俊, 左子威, 孙思琴, 康多运, 杨心语, 胡晓慧. 生物炭辅助固化土强度性质的研究进展[J]. 材料导报, 2026, 40(5): 25040059-8.
[15] 毕浩, 韩清清, 吴平, 陈思源, 虞育杰, 黄睿. 微藻水热碳化技术的机理、调控与应用:面向“双碳”目标的生物质基功能材料的研究进展[J]. 材料导报, 2026, 40(4): 25030017-11.
[1] LU Xuepeng, TU Yankun, ZHENG Yong, DONG Zuowei. Microstructure and Properties of WC-(Co-Ni) Cemented Carbides with Plate-like WC Grains[J]. Materials Reports, 2017, 31(20): 73 -76 .
[2] DING Yanhong, XUE Penghe, LI Yan, MA Xu. Soft Magnetic Properties of Fe67Co18Si11B4 Amorphous Alloy After
Free Surface Leveling
[J]. Materials Reports, 2019, 33(4): 586 -589 .
[3] SUN Ya, WU Changjun, LIU Ya, PENG Haoping, SU Xuping. Impact of Alloying Elements on the Phase Composition and mechanical Properties of the CoCrFeNi-based High Entropy Alloys: a Review[J]. Materials Reports, 2019, 33(7): 1169 -1173 .
[4] FAN Kai, LU Xuefeng, LYU Kaiming, QIAN Kun. Advances in Research on Pore Structure of C/C Composites[J]. Materials Reports, 2019, 33(13): 2184 -2190 .
[5] ZHAO Hongtao, WANG Shumin, LIU Zhijiang, ZHANG Man. Preparation of High-purity and High-white CaCO3 by Phosphogypsum Mineralization for CO2 Capture[J]. Materials Reports, 2019, 33(18): 3031 -3034 .
[6] ZHANG Biao, CHEN Xin, PAN Kaixuan, ZHAO Kangming, YU Guishen. Failure Prediction of Friction Stir Spot Welded Joints Under Multi-axis Loads: an Empirical Failure Model[J]. Materials Reports, 2019, 33(18): 3096 -3100 .
[7] LIU Pengfei, WANG Sijie, YIN Fengshi, SHAN Teng, QIAO Yulin. Process and Mechanism of Laser Removal of Paint on 2024 Aluminum Alloy[J]. Materials Reports, 2020, 34(24): 24121 -24126 .
[8] LIANG Guang, ZHU Sheng, WANG Wenyu, WANG Xiaoming, HAN Guofeng, REN Zhiqiang. Research Status and Development Trend of Aluminum Alloy Anticorrosion Technology[J]. Materials Reports, 2020, 34(Z2): 429 -436 .
[9] YANG Shaopeng, YU Wenchao, HU Fangzhong, WANG Maoqiu, WANG Kaizhong, WANG Zimin, SHI Jie. The Austenite Grain Growth Behavior of Low Carbon Gear Steel 18CrNiMo7-6[J]. Materials Reports, 2021, 35(8): 8179 -8183 .
[10] ZHAO Lixiao, WANG Penggang, WANG Lanqin, ZHAO Tiejun, GUANG Wentao. Analysis of Parameters for Temperature and Humidity Response in Concrete: Moisture Diffusion Coefficient and Thermal Conductivity[J]. Materials Reports, 2021, 35(12): 12075 -12080 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed