生物质碳材料孔隙结构及调控方法研究进展

张珂1, 林琳1*, 张健2, 刘静1, 徐博3

化工新型材料 ›› 2023, Vol. 51 ›› Issue (8) : 48 -54.

PDF
化工新型材料 ›› 2023, Vol. 51 ›› Issue (8) : 48-54. DOI: 10.19817/j.cnki.issn1006-3536.2023.08.010
综述与专论

生物质碳材料孔隙结构及调控方法研究进展

    张珂1, 林琳1*, 张健2, 刘静1, 徐博3
作者信息 +

Research progress on pore structure and regulation methods of biomass carbon materials

  • Zhang Ke1, Lin Lin1, Zhang Jian2, Liu Jing1, Xu Bo3
Author information +
文章历史 +
PDF

摘要

综述了比表面积、孔隙结构和孔径分布对生物质碳材料电化学性能的影响;并针对孔隙结构这一影响因素进行了进一步探究, 主要阐述了蜂窝状、网络状、管状和片状孔隙结构的生物质碳材料在电化学储能方面的优势, 以及不同形状的碳材料的调控方法;简单介绍了有序碳材料的可控构建及其在电化学方面的应用;分析了多级孔结构碳材料的特点(清晰的层次结构、三维的连通孔道)。最后展望了生物质碳材料通过孔隙调控提高电极材料电化学性能的发展趋势。

Abstract

The effects of specific surface area, pore structure and pore size distribution on the electrochemical performance of biomass carbon materials were reviewed;and further investigation was carried out for the pore structure as an influencing factor, mainly describing the advantages of biomass carbon materials with honeycomb, network, tubular and lamellar pore structures in electrochemical energy storage and the regulation methods of carbon materials with different shapes.The controlled construction of ordered carbon materials and their application in electrochemistry were briefly introduced and the characteristics of carbon materials with multi-level pore structure (clear hierarchical structure, three-dimensional connected pore channels) were analyzed.Finally, the development trend of biomass carbon materials to improve the electrochemical performance of electrode materials through pore regulation was foreseen.

关键词

生物质碳材料 / 电极材料 / 孔隙结构 / 多级孔结构

Key words

biomass carbon material / electrode material / pore structure / multi-level pore structure

引用本文

引用格式 ▾
生物质碳材料孔隙结构及调控方法研究进展[J]. 化工新型材料, 2023, 51(8): 48-54 DOI:10.19817/j.cnki.issn1006-3536.2023.08.010

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Chen X,Paul R,Dai L.Carbon-based supercapacitors for efficient energy storage[J].National Science Review,2017,4(3):453-489.
[2] Shao H,Wu Y C,Lin Z,et al.Nanoporous carbon for electrochemical capacitive energy storage[J].Chemical Society Reviews,2020,49(10):3005-3039.
[3] Zheng X,Luo J,Lv W,et al.Two-dimensional porous carbon:synthesis and ion-transport properties[J].Advanced Materials,2015,27(36):5388-5395.
[4] Wang J,Nie P,Ding B,et al.Biomass derived carbon for energy storage devices[J].Journal of Materials Chemistry A,2017,5:2411-2428.
[5] Liu B,Liu Y,Chen H,et al.Oxygen and nitrogen co-doped porous carbon nanosheets derived from Perilla frutescens for high volumetric performance supercapacitors[J].Power Sources,2017,341:309-317.
[6] Liang B,Lehmann J,Solomon D,et al.Black carbon increases cation exchange capacity in soils[J].Soil Science Society of America Journal,2006,70(5):1719-1730.
[7] 曹家铭,张健,时君友,等.白腐菌预处理在生物质材料中的应用[J].林产工业,2021,58(3):5.
[8] Wang C,Wu D,Wang H,et al.Biomass derived nitrogen-doped hierarchical porous carbon sheets for supercapacitors with high performance[J].Journal of Colloid and Interface Science,2018,523:133-143.
[9] Zhu M,Lan J,Zhang X,et al.Porous carbon derived from Ailanthus altissima with unique honeycomb-like microstructure for high-performance supercapacitors[J].New Journal of Chemistry,2017,41(11):4281-4285.
[10] Liu Y,Xiao Z,Liu Y,et al.Biowaste-derived 3D honeycomb-like porous carbon with binary-heteroatom doping for high-performance flexible solid-state supercapacitors[J].Journal of Materials Chemistry A,2018,6(1):160-166.
[11] Cheng Y,Wu L,Fang C,et al.Synthesis of porous carbon materials derived from laminaria japonica via simple carbonization and activation for supercapacitors[J].Journal of Materials Research and Technology,2020,9(3):3261-3271.
[12] Yu B,Jiang G,Cao C,et al.Preparation and electrochemical properties of ultra-high specific surface area N-doped biomass-porous carbon[J].Journal of Energy Storage,2020,30:101537.
[13] Qiao Y,Zhang R,Li R,et al.Green synthesis of hierarchical porous carbon with adjustable porosity for high performance supercapacitors[J].Diamond and Related Materials,2021,117:108488.
[14] Sun Z,Zheng M,Hu H,et al.From biomass wastes to vertically aligned graphene nanosheet arrays:a catalyst-free synthetic strategy towards high-quality graphene for electrochemical energy storage[J].Chemical Engineering Journal,2018,336:550-561.
[15] Gao Y,Wang L,Wang F,et al.Ball milling combined with activation preparation of honeycomb-like porous carbon derived from peony seed shell for high-performance supercapacitors[J].Journal of Materials Science:Materials in Electronics,2022,33:13023-13039.
[16] Gao Y,Zheng S,Fu H,et al.Three-dimensional nitrogen doped hierarchically porous carbon aerogels with ultrahigh specific surface area for high-performance supercapacitors and flexible micro-supercapacitors[J].Carbon,2020,168:701-709.
[17] Liang Q,Ye L,Huang Z H,et al.A honeycomb-like porous carbon derived from pomelo peel for use in high-performance supercapacitors[J].Nanoscale,2014,6(22):13831-13837.
[18] Wang Y,Yang R,Li M,et al.Hydrothermal preparation of highly porous carbon spheres from hemp (Cannabis sativa L.) stem hemicellulose for use in energy-related applications[J].Industrial Crops and Products,2015,65:216-226.
[19] Yuan Y,Yi R,Sun Y,et al.Porous activated carbons derived from Pleurotus eryngii for supercapacitor applications[J].Journal of Nanomaterials,2018,2018:1-10.
[20] Xu H,Zhang Y,Wang L,et al.Hierarchical porous biomass-derived carbon framework with ultrahigh surface area for outstanding capacitance supercapacitor[J].Renewable Energy,2021,179:1826-1835.
[21] Liu S,Hu X,Ma J,et al.N/P Codoped carbon materials with an ultrahigh specific surface area and hierarchical porous structure derived from durian peel for high-performance supercapacitors[J].Energy & Fuels,2020,34(11):14948-14957.
[22] Liu Y,Li Z,Yao L,et al.Confined growth of NiCo2S4 nanosheets on carbon flakes derived from eggplant with enhanced performance for asymmetric supercapacitors[J].Chemical Engineering Journal,2019,366:550-559.
[23] Zhang F,Xiao X,Gandla D,et al.Bio-derived carbon with tailored hierarchical pore structures and ultra-high specific surface area for superior and advanced supercapacitors[J].Nanomaterials,2021,12(1):27.
[24] Hou S P,Liao M D,Peng C,et al.Honeycomb-like hierarchical porous activated carbons from biomass waste with ultrahigh specific surface area for high-rate electrochemical capacitors[J].Energy & Fuels,2021,35(20):16860-16869.
[25] 朱倩莹,李莹蕊,顾佳俊,等.超级电容器生物碳电极的制备及应用进展[J].电源技术,2020,44(9):1395-1398.
[26] Barbieri O,Hahn M,Herzog A,et al.Capacitance limits of high surface area activated carbons for double layer capacitors[J].Carbon,2005,43(6):1303-1310.
[27] Simon P,Gogotsi Y.Materials for electrochemical capacitors[J].Nature Materials,2008,7(11):845-854.
[28] Jiang L,Sheng L,Fan Z.Biomass-derived carbon materials with structural diversities and their applications in energy storage[J].Science China Materials,2017,61(2):1-26.
[29] Gaddam R R,Yang D,Narayan R,et al.Biomass derived carbon nanoparticle as anodes for high performance sodium and lithium ion batteries[J].Nano Energy,2016,26:346-352.
[30] Ogale A A,Zhang M,Jin J.Recent advances in carbon fibers derived from biobased precursors[J].Journal of Applied Polymer Science,2016,133(45):43794.
[31] Yu H,Zhang W,Li T,et al.Capacitive performance of porous carbon nanosheets derived from biomass cornstalk[J].RSC Advances,2017,7(2):1067-1074.
[32] Fan Y M,Song W L,Li X,et al.Assembly of graphene aerogels into the 3D biomass-derived carbon frameworks on conductive substrates for flexible supercapacitors[J].Carbon,2017,111:658-666.
[33] 田相军,凌泽,夏晴,等.一种三维多孔碳材料的制备及电容特性[J].电池工业,2018,22(5):227-232.
[34] Chen C,Zhang Y,Li Y,et al.All-wood,low tortuosity,aqueous,biodegradable supercapacitors with ultra-high capacitance[J].Energy & Environmental Science,2017,10(2):538-545.
[35] Wang Yingjie,Zhao Lianchun,Peng Hui,et al.Three-dimensional honeycomb-like porous carbon derived from tamarisk roots via a green fabrication process for high-performance supercapacitors[J].Ionics,2019,25(9):4315-4323.
[36] Zhao Y Q,Lu M,Tao P Y,et al.Hierarchically porous and heteroatom doped carbon derived from tobacco rods for supercapacitors[J].Journal of Power Sources,2016,307:391-400.
[37] Dong Y,Wang W,Quan H,et al.Nitrogen-doped foam-like carbon plate consisting of carbon tubes as high-performance electrode materials for supercapacitors[J].ChemElectroChem,2016,3(5):814-821.
[38] Xie L,Sun G,Su F,et al.Hierarchical porous carbon microtubes derived from willow catkins for supercapacitor applications[J].Journal of Materials Chemistry A,2016,4(5):1637-1646.
[39] Chen F,Ji Y,Deng Y,et al.Ultrasonic-assisted fabrication of porous carbon materials derived from agricultural waste for solid-state supercapacitors[J].Journal of Materials Science,2020,55(25):11512-11523.
[40] Cychosz K A,Guillet-Nicolas R,García-Martínez J,et al.Recent advances in the textural characterization of hierarchically structured nanoporous materials[J].Chemical Society Reviews,2017,46(2):389-414.
[41] Li Y,Zhang D,Zhang Y,et al.Biomass-derived microporous carbon with large micropore size for high-performance supercapacitors[J].Journal of Power Sources,2020,448:227396.
[42] Young C,Lin J,Wang J,et al.Significant effect of pore sizes on energy storage in nanoporous carbon supercapacitors[J].Chemistry-A European Journal,2018,24(23):6127-6132.
[43] Meng Q,Ge H,Yao W,et al.One-step synthesis of nitrogen-doped wood derived carbons as advanced electrodes for supercapacitor applications[J].New Journal of Chemistry,2019,43(9):3649-3652.
[44] Chen W,Wang X,Liu C,et al.Rapid single-step synthesis of porous carbon from an agricultural waste for energy storage application[J].Waste Management,2020,102:330-339.
[45] Li Y T,Pi Y T,Lu L M,et al.Hierarchical porous active carbon from fallen leaves by synergy of K2CO3 and their supercapacitor performance[J].Journal of Power Sources,2015,299:519-528.
[46] Rufford T E,Hulicova-Jurcakova D,Khosla K,et al.Microstructure and electrochemical double-layer capacitance of carbon electrodes prepared by zinc chloride activation of sugar cane bagasse[J].Journal of Power Sources,2010,195(3):912-918.
[47] Mao H,Zhou D,Hashisho Z,et al.Microporous activated carbon from pinewood and wheat straw by microwave-assisted KOH treatment for the adsorption of toluene and acetone vapors[J].RSC Advances,2015,5(45):36051-36058.
[48] Li W,Huang Z,Wu Y,et al.Honeycomb carbon foams with tunable pore structures prepared from liquefied larch sawdust by self-foaming[J].Industrial Crops and Products,2015,64:215-223.
[49] Qu Y,Zan G,Wang J,et al.Preparation of eggplant-derived macroporous carbon tubes and composites of EDMCT/Co(OH)(CO3)0.5 nano-cone-arrays for high-performance supercapacitors[J].Journal of Materials Chemistry A,2016,4(11):4296-4304.
[50] Wang C,Huang J,Qi H,et al.Controlling pseudographtic domain dimension of dandelion derived biomass carbon for excellent sodium-ion storage[J].Journal of Power Sources,2017,358:85-92.
[51] Gao Y,Zhang W,Yue Q,et al.Simple synthesis of hierarchical porous carbon from enteromorpha prolifera by a self-template method for supercapacitor electrodes[J].Journal of Power Sources,2014,270:403-410.
[52] Wang C,Wu D,Wang H,et al.Nitrogen-doped two-dimensional porous carbon sheets derived from clover biomass for high performance supercapacitors[J].Journal of Power Sources,2017,363:375-383.
[53] Sliwak Agata,Moyseowicz Adam,Gryglewicz Grazyna.Hydrothermal-assisted synthesis of an iron nitride-carbon composite as a novel electrode material for supercapacitors[J].Journal of Materials Chemistry A,2017,5(12):5680-5684.
[54] Kong Qinglu,Zhang Lingxia,Wang Min,et al.Soft-to-hard templating to well-dispersed N-doped mesoporous carbon nanospheres via one-pot carbon/silica source copolymerization[J].Science Bulletin,2016,61(15):1195-1201.
[55] Wang T,Liu X Y,Zhao D Y,et al.The unusual electrochemical characteristics of a novel three-dimensional ordered bicontinuous mesoporous carbon[J].Chemical Physics Letters,2004,389(4):327-331.
[56] Zhao X,Wang S,Wu Q.Nitrogen and phosphorus dual-doped hierarchical porous carbon with excellent supercapacitance performance[J].Electrochimica Acta,2017,247(1):1140-1146.
[57] Feng J,Song W,Sun L,et al.One-step nanocasting synthesis of nitrogen and phosphorus dual heteroatom doped ordered mesoporous carbons for supercapacitor application[J].RSC Advances,2016,6(111):110337-110343.
[58] Fang B,Kim J H,Kim M S,et al.Hierarchical nanostructured carbons with meso-macroporosity:design,characterization,and applications[J].Accounts of Chemical Research,2013,46(7):1397-1406.
[59] Zhu S,Li J J,He C N,et al.Soluble salt self-assembly-assisted synthesis of three-dimensional hierarchical porous carbon networks for supercapacitors[J].Journal of Materials Chemistry A,2015,3(44):22266-22273.
[60] Hao P,Zhao Z,Tian J,et al.Hierarchical porous carbon aerogel derived from bagasse for high performance supercapacitor electrode[J].Nanoscale,2014,6(20):12120-12129.

基金资助

国家自然科学基金(32001260、12104015);吉林省科技发展计划项目(20210203171SF)

AI Summary AI Mindmap
PDF

634

访问

0

被引

导航
相关文章

AI思维导图

/