石墨烯基多孔碳材料对CO2的捕集分离研究进展

廖宏斌, 杨志远*, 刘娇萍

化工新型材料 ›› 2018, Vol. 46 ›› Issue (3) : 14 -18.

PDF (1127KB)
化工新型材料 ›› 2018, Vol. 46 ›› Issue (3) : 14-18.
综述与专论

石墨烯基多孔碳材料对CO2的捕集分离研究进展

    廖宏斌, 杨志远*, 刘娇萍
作者信息 +

Review on the capture and separation of CO2 from the graphene based porous carbon material

  • Liao Hongbin, Yang Zhiyuan, Liu Jiaoping
Author information +
文章历史 +
PDF (1153K)

摘要

日益严重的温室效应引起人们对CO2捕集分离技术的关注。石墨烯基多孔碳材料以其优异的导热性、热稳定性、多孔性和高机械强度等优点,在CO2捕集分离等方面展现出广阔的应用前景。对石墨烯基多孔碳材料在CO2捕集分离方面的研究进展进行了综述,分析了二维石墨烯、三维石墨烯以及石墨烯复合多孔材料在CO2捕集分离的研究进展。总结了提高石墨烯基多孔材料性能的方法,简述了石墨烯基多孔材料在CO2捕集分离中的不足以及未来的研究方向。

Abstract

The increasing greenhouse effect caused the concern of CO2 separation and capture technology.Graphene based porous carbon materials with excellent thermal conductivity,thermal stability,porosity and high mechanical strength,show a broad application prospect in the adsorption of CO2.The progress in the study on the adsorption of graphene based porous carbon materials on CO2 was summarized,and analyzed the progress of the two-dimensional graphene,the three-dimensional graphene and graphene composite porous materials on CO2 adsorption.The methods to improve the performance of graphene based porous materials were summarized and pointed out the limitations and future research direction of graphene based porous materials on CO2 separation and capture.

关键词

石墨烯基多孔材料 / CO2捕集分离 / 比表面积 / 吸附容量

Key words

graphene based porous material / CO2 separation and capture / specific surface area / adsorption capacity

引用本文

引用格式 ▾
石墨烯基多孔碳材料对CO2的捕集分离研究进展[J]. 化工新型材料, 2018, 46(3): 14-18 DOI:

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Labus K,Gryglewicz S,Machnikowski J.Granular KOH-activated carbons from coal-based cokes and their CO2 adsorption capacity[J].Fuel,2014,118:9-15.
[2] Araminiya A,Rufford T E,Zhu Z.Nitrogen-doped carbon foams synthesized from banana peel and zinc complex template for adsorption of CO2,CH4,and N2[J].Energy Fuels,2016,30(9):7298-7309.
[3] Arami Niya A,Rufford T E,Zhu Z.Activated carbon monoliths with hierarchical pore structure from tar pitch and coal powder for the adsorption of CO2,CH4 and N2[J].Carbon,2016,103:115-124.
[4] Chai S,Liu Z M,Huang K,et al.Amine functionalization of microsized and nanosized mesoporous carbons for carbon dioxide capture[J].Ind Eng Chem Res,2016,55(27):7355-7361.
[5] Ge C,Song J,Qin Z,et al.Polyurethane foam-based ultramicroporous carbons for CO2 capture[J].Appl Mater Interfaces,2016,8(29):18849-18859.
[6] Adeniran B,Masika E,Mokaya R.A family of microporous carbons prepared via a simple metal salt carbonization route with high selectivity for exceptional gravimetric and volumetric post-combustion CO2 capture[J].J Mater Chem A,2014,2(35):14696-14710.
[7] Díez N,Álvarez P,Granda M,et al.CO2 adsorption capacity and kinetics in nitrogen-enriched activated carbon fibers prepared by different methods[J].Chemical Engineering Journal,2015,281:704-712.
[8] Choma J,Osuchowski L,Marszewski M,et al.Developing microporosity in Kevlar1-derived carbon fibers by CO2 activation for CO2 adsorption[J].Journal of CO2 Utilization,2016,16:17-22.
[9] Lee S Y,Park S J.Determination of the optimal pore size for improved CO2 adsorption in activated carbon fibers[J].Journal of Colloid and Interface Science,2013,389(1):230-235.
[10] 汤艳萍,徐庆,唐睿智,等.二维碳质材料的制备和应用[J].新型炭材料,2016,31(3):213-231.
[11] Koenig S P,Wang L,Pellegrino J,et al.Selective molecular sieving through porous grapheme[J].Nature Nanotechnology,2012,7(11):728-732.
[12] Meyer J C,Geim A K,Katsnelson M I,et al.The structure of suspended graphene sheets[J].Nature,2007,446(7131):60-63.
[13] Lee C,Wei X,J W,et al.Measurement of the elastic properties and intrinsic strength of monolayer graphene[J].Science,2008,321(5887):385-388.
[14] Leenaerts O,Partoens B,Peeters F M.Graphene:a perfect nanoballoon[J].Appl Phys Lett,2008,93(19):183-186.
[15] Bunch J S,Verbridge S S,Alden J S,et al.Impermeable atomic membranes from graphene sheets[J].Nano Lett,2008,8(8),2458-2462.
[16] Chen S,Brown L,Levendorf M,et al.Oxidation resistance of graphene-coated Cu and Cu/Ni alloy[J].Nano,2011,5(2),1321-1327.
[17] Huang L,Zhang M,Li C,et al.Graphene-based membranes for molecular separation[J].J Phys Chem Lett,2015,6(14):2806-2815.
[18] Dreyer D R,Park S,Bielawski C W,et al.The chemistry of graphene oxide[J].Chem Soc Rev,2010,39(1):228-240.
[19] Wood B C,Bhide S Y,Dutta D,et al.Methaneand carbon dioxide adsorption on edge-functionalized graphene:a comparative DFT study[J].J Chem Phys,2012,137(5):573-586.
[20] Seema H,Kemp K C,Le N H,et al.Highly selective CO2 capture by S-doped microporous carbon materials[J].Carbon,2014,66:320-326.
[21] Haque E,Sarkar S,Hassan M,et al.Tuning graphene for energy and environmental applications:oxygen reduction reaction and greenhouse gas mitigation[J].Journal of Power Sources,2016,328:472-481.
[22] 孙成珍,张锋,柳海,等.多孔石墨烯气体分离膜分子渗透机理[J].化工学报,2014,65(8):3026-3031.
[23] Sun C,Wen B,Bai B.Application of nanoporous graphene membranes in natural gas processing:molecular simulations of CH4/CO2,CH4/H2S and CH4/N2 separation[J].Chemical Engineering Science,2015,138:616-621.
[24] 温伯尧,孙成珍,白博峰.多孔石墨烯分离CH4/CO2的分子动力学模拟[J].物理化学学报,2015,31(2):261-267.
[25] 刘晓强,田之悦,储伟,等.CH4,CO2和H2O在非金属原子修饰石墨烯表面的吸附[J].物理化学学报,2014,30(2):251-256.
[26] Souza L K C D,Wickramaratne N P,Ello A S,et al.Enhancement of CO2 adsorption on phenolic resin-based mesoporous carbons by KOH activation[J].Carbon,2013,65:334-340.
[27] Srinivas G,Burress J,Yildirim T,et al.Graphene oxide derived carbons (GODCs):synthesis and gas adsorption properties[J].Energy Environ Sci,2012,5(4):6453-6459.
[28] Ganesan A,Shaijumon M M.Activated graphene-derived porous carbon with exceptional gas adsorption properties[J].Microporous and Mesoporous Materials,2016,220(1):21-27.
[29] Xia K,Tian X,Fei S,et al.Hierarchical porous graphene-based carbons prepared by carbon dioxide activation and their gas adsorption properties[J].International Journal of Hydrogenenergy,2014,39(21):11047-11054.
[30] Sui Z Y,Meng Q H,Li J T,et al.High surface area porous carbons produced by steam activation of graphene aerogels[J].J Mater Chem A,2014,2(25):9891-9898.
[31] Lee J,Aluru N R.Water-solubility-driven separation of gases using graphene membrane[J].Journal of Membrane Science,2013,428(2):546-553.
[32] Casco M E,Morelos-Gómez A,Vega-Díaz S M,et al.CO2 adsorption on crystalline graphitic nanostructures[J].Journal of CO2 Utilization,2014(5):60-65.
[33] Wang X,Chi C,Tao J,et al.Improving the hydrogen selectivity of graphene oxide membranes by reducing non-selective pores with intergrown ZIF-8 crystals[J].Chem Commun,2016,52(52):8087-8090.
[34] Saha D,Nelson K,Chen J,et al.Adsorption of CO2,CH4,and N2 in micro-mesoporous nanographene:a comparative study[J].J Chem Eng Data,2015,60(9):2636-2645.
[35] Kwac K,Ji H L,Choi J W,et al.Computational analysis of pressure-dependent optimal pore size for CO2 capture with graphitic surfaces[J].J Phys Chem C,2016,120(7):3978-3985.
[36] Sudeep P M,Narayanan T N,Ganesan A,et al.Covalently interconnected three dimensional graphene oxide solids[J].Nano,2013,7(8):7034-7040.
[37] Yun S,Lee H,Lee W E,et al.Multiscale textured,ultralight graphene monoliths for enhanced CO2 and SO2 adsorption capacity[J].Fuel,2016,174:36-42.
[38] Sui Z Y,Han B H.Effect of surface chemistry and textural properties on carbon dioxide uptake in hydrothermally reduced graphene oxide[J].Carbon,2015,82:590-598.
[39] Dong L,Zhang C,Bai Y,et al.High performance PEBA2533-functional MMT mixed matrix membrane containing high-speed facilitated transport channels for CO2/N2 separation[J].Sustainable Chem Eng,2016,4(6):3486-3496.
[40] Lin R,Ge L,Liu S,et al.Mixed-matrix membranes with metal-organic framework decorated CNT fillers for efficient CO2 separation[J].Appl Mater Interfaces,2015,7(27):14750-14757.
[41] Smith Z P,Freeman B D.Graphene oxide:a new platform for high-performance gas-and liquid-separation membranes[J].Angew Chem Int Ed,2014,53(39):10286-10288.
[42] Joshi R K,Carbone P,Wang F C,et al.Precise and ultrafast molecular sieving through grapheneoxide membranes[J].Science,2014,343(6172):752-754.
[43] Li X,Cheng Y,Zhang H,et al.Efficient CO2 capture by functionalized graphene oxide nanosheets as fillers to fabricate multi-permselective mixed matrixmMembranes[J].Appl Mater Interfaces,2015,7(9):5528-5537.
[44] Wang J,Stevens L A,Drage T C Drage,et al.Preparation and CO2 adsorption of amine modified Mg-Al LDH via exfoliation route[J].Chemical Engineering Science,2012,68(1):424-431.[45] Garciagallastegui A,Iruretagoyena D,Gouvea V,et al.Graphene oxide as support for layered double hydroxides:enhancing the CO2 Adsorption Capacity[J].Chem Mater,2012,24(23):4531-4539.
[46] Iruretagoyena D,Huang X,Shaffer M S P,et al.Influence of alkali metals (Na,K,and Cs) on CO2 adsorption by layered double oxides supported on graphene oxide[J].Ind Eng Chem Res,2015,54(46):11610-11618.
[47] Chowdhury S,Parshetti G K,Balasubramanian R.Post-combustion CO2 capture using mesoporous TiO2/graphene oxide nanocomposites[J].Chemical Engineering Journal,2015,263:374-384.
[48] Rad A S,Foukolaei V P.Density functional study of Al-doped graphene nanostructure towards adsorption of CO,CO2 and H2O[J].Synthetic Metals,2015,210:171-178.
[49] Li W,Yang H,Jiang X,et al.Highly selective CO2 adsorption of ZnO based N-doped reduced graphene oxide porous nanomaterial[J].Applied Surface Science,2016,360:143-147.
[50] Kudasheva A,Sorribas S,Zornoza B,et al.Pervaporation of water/ethanol mixtures through polyimide based mixed matrix membranes containing ZIF-8,ordered mesoporous silica and ZIF-8-silica core-shell spheres[J].J Chem Technol Biotechnol,2015,90(4):669-677.
[51] Kumar R,Jayaramulu K,Maji T K,et al.Growth of 2D sheets of a MOF on grapheme surfaces to yield composites with novel gas adsorption characteristics[J].Dalton Trans,2014,43(20):7383-7386.
[52] Qiu X,Wang X,Li Y.Controlled growth of dense and ordered metal-organic framework nanoparticles on graphene oxide[J].Chem Commun,2015,51:3874-3877.
[53] Bian Z,Xu J,Zhang S,et al.Interfacial growth of metal organic framework/graphite oxide composites through pickering emulsion and their CO2 capture performance in the presence of humidity[J].Langmuir,2015,31(26):7410-7417.
[54] Kumar R,Jayaramulu K,Maji T K,et al.Hybrid nanocomposites of ZIF-8 with graphene oxide exhibiting tunable morphology,significant CO2 uptake and other novel properties[J].Chem Commun,2013,49(43):4947-4949.
[55] Xu F,Yu Y,Yan J,et al.Ultrafast room temperature synthesis of GrO@HKUST-1 composites with high CO2 adsorption capacity and CO2/N2 adsorption selectivity[J].Chemical Engineering Journal,2016,303:231-237.

基金资助

国家自然科学基金(41772166);陕西省重点研发计划(2017ZDCXL-GY-10-01-02);国土资源部煤炭资源勘查与综合利用重点实验室重点项目(ZKF2016-1)

AI Summary AI Mindmap
PDF (1127KB)

945

访问

0

被引

导航
相关文章

AI思维导图

/