Chemical Industry and Engineering Progress ›› 2017, Vol. 36 ›› Issue (09): 3362-3372.DOI: 10.16085/j.issn.1000-6613.2017-0235
Previous Articles Next Articles
LI Xiaoqiang1,2, DING Yudong1,2, LIAO Qiang1,2, ZHU Xun1,2, GUO Liheng1,2, WANG Hong1,2
Received:
2017-02-16
Revised:
2017-03-24
Online:
2017-09-05
Published:
2017-09-05
李晓强1,2, 丁玉栋1,2, 廖强1,2, 朱恂1,2, 郭李恒1,2, 王宏1,2
通讯作者:
丁玉栋,博士,教授,研究内容为强化传热传质、CO2捕集技术。
作者简介:
李晓强(1992-),男,硕士研究生
基金资助:
CLC Number:
LI Xiaoqiang, DING Yudong, LIAO Qiang, ZHU Xun, GUO Liheng, WANG Hong. Review on porous liquids and its application in carbon dioxide sequestration[J]. Chemical Industry and Engineering Progress, 2017, 36(09): 3362-3372.
李晓强, 丁玉栋, 廖强, 朱恂, 郭李恒, 王宏. 多孔液体及其二氧化碳气体分离研究进展[J]. 化工进展, 2017, 36(09): 3362-3372.
[1] CUNDY C S,COX P A.The hydrothermal synthesis of zeolites:history and development from the earliest days to the present time[J].Chemical Reviews,2003,103(3):663-702. [2] SHIMIZU G K H,TAYLOR J M,KIM S R.Proton conduction with metal-organic frameworks[J].Science,2013,341(6144):354-355. [3] FENG X,DING X S,JIANG D L.Covalent organic frameworks[J].Chemical Society Reviews,2012,41(18):6010-6022. [4] ZHAO D Y,FENG J L,HUO Q H,et al.Triblock copolymer syntheses of mesoporous silica with periodic 50 to 300 angstrom pores[J].Science,1998,279(5350):548-552. [5] TOZAWA T,JONES J T,SWAMY S I,et al. Porous organic cages[J].Nature Materials,2009,8(12):973-978. [6] SING K S W.Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity(Recommendations 1984)[M]//Handbook of Heterogeneous Catalysis.Wiley-VCH Verlag GmbH & Co.KGaA,2008:603-619. [7] DU X,SUN Y,TAN B,et al.Troger's base-functionalised organic nanoporous polymer for heterogeneous catalysis[J]. Chemical Communications,2010,46(6):970-972. [8] GERMAIN J,FRECHET J M,SVEC F.Nanoporous polymers for hydrogen storage[J].Small,2009,5(10):1098-1111. [9] MCKEOWN N B,BUDD P M.Exploitation of intrinsic microporosity in polymer-based materials[J].Macromolecules,2010,43(12):5163-5176. [10] MCKEOWN N B,BUDD P M.Polymers of intrinsic microporosity (PIMs):organic materials for membrane separations,heterogeneous catalysis and hydrogen storage[J].ChemInform,2006,37(45):675-683. [11] DAWSON R,COOPER A I,Adams D J.Nanoporous organic polymer networks[J].Progress in Polymer Science,2012,37(4):530-563. [12] LU X Q,JIN D L,WEI S X,et al.Strategies to enhance CO2 capture and separation based on engineering absorbent materials[J]. J. Mater. Chem. A,2015,3(23):12118-12132. [13] PLASYNSKI S I,LITYNSKI J T,MCLLVRIED H G,et al.Progress and new developments in carbon capture and storage[J].Critical Reviews in Plant Sciences,2009,28(3):123-138. [14] O'REILLY N,GIRI N,JAMES S.Porous liquids[J].Chemistry,2007,13(11):3020-3025. [15] 侯林慧,曾祥平,张建勇.液体的多孔性[J].化学通报,2008,71(7):518-521. HOU L H,ZENG X P,ZHANG J Y.Porosity in liquids[J].Chemistry,2008,71(7):518-521. [16] ZHANG J,CHAI S H,QIAO Z A,et al.Porous liquids:a promising class of media for gas separation[J]. Angewandte Chemie,2015,54(3):932-6. [17] GIRI N,POPOLO M G D,MELAUGH G,et al.Liquids with permanent porosity[J].Nature International Weekly Journal of Science,2015,527(7577):216-220. [18] POHORILLE A,PRATT L R.Cavities in molecular liquids and the theory of hydrophobic solubilities[J].Journal of the American Chemical Society,1990,112(13):5066-5074. [19] PRATT L R,POHORILLE A.Theory of hydrophobicity:transient cavities in molecular liquids[J]. Proceedings of the National Academy of Sciences,1992,89(7):2995-2999. [20] MANAKKER F V D,VERMONDEN T,NOSTRUM C F V,et al. Cyclodextrin-based polymeric materials:synthesis,properties,and pharmaceutical/biomedical applications[J].Biomacromolecules,2009,10(12):3157-3175. [21] SZEJTLI J.Introduction and general overview of cyclodextrin chemistry[J].Chemical Reviews,1998,98(5):1743-1754. [22] CONNORS K A.The stability of cyclodextrin complexes in solution[J].Chemical Reviews,1997,97(5):1325-1358. [23] KONIG W A,SABINE L,GERHARD W.Modified cyclodextrins——novel,highly enantioselective stationary phases for gas chromatography[J].Angewandte Chemie International Edition in English,1988,27(7):979-980. [24] CAIRA M R,BOURNE S A,MHLONOGO W T,et al.New crystalline forms of permethylated beta-cyclodextrin[J].Chemical Communications,2004,19:2216-2217. [25] LIN K Y,PARK A H.Effects of bonding types and functional groups on CO2 capture using novel multiphase systems of liquid-like nanoparticle organic hybrid materials[J].Environmental Science & Technology,2011,45(15):6633-6639. [26] RODRIGUEZ R,HERRERA R,Archer L A,et al.Nanoscale Ionic Materials[J].Advanced Materials,2008,20(22):4353-4358. [27] BOURLINOS A B,HERRERA R,Chalkias N,et al.Surface-functionalized nanoparticles with liquid-like behavior[J].Advanced Materials,2005,17(2):234-237. [28] LIN K Y A,PETIT C,PARK A H A.Effect of SO2 on CO2 capture using liquid-like nanoparticle organic hybrid materials[J].Energy & Fuels,2013,27(8):4167-4174. [29] PETIT C,LIN K Y,PARK A H.Design and characterization of liquidlike POSS-based hybrid nanomaterials synthesized via ionic bonding and their interactions with CO2[J].Langmuir the ACS Journal of Surfaces & Colloids,2013,29(39):12234-12242. [30] KIM K,SELVAPALAM N,KO Y H,et al.Functionalized cucurbiturils and their applications[J].Cheminform,2007,36(2):267-279. [31] 杨辉,谭业邦,黄晓玲,等.葫芦脲的研究进展[J].化学进展,2009,21(1):164-173. YANG H,TAN Y B,HUANG X L,et al.Research progress of cucurbituril[J].Progress in Chemistry,2009,21(1):164-173. [32] ZHAO J,KIM H J,OH J,et al.Cucurbit[n]uril derivatives soluble in water and organic solvents[J].Angewandte Chemie,2001,113(22):4363-4365. [33] 张锐,薛红.葫芦脲研究与进展[J].化工技术与开发,2005,34(1):24-26. ZHANG R,XUE H.Study progress of cucurbituril[J].Technology & Development of Chemical Industry,2005,34(1):24-26. [34] WARMUTH R,YOON J.Recent highlights in hemicarcerand chemistry[J].Accounts of Chemical Research,2001,34(2):95-105. [35] BARBOUR L J.Crystal porosity and the burden of proof[J].Chemical Communications,2006,11:1163-1168. [36] TOZAWA T,JONES J T,SWAMY S I,et al.Porous organic cages[J].Nature Materials,2009,8(12):973-978. [37] LIU X,LIU Y,LI G,et al.One-Pot,18-Component synthesis of an octahedral nanocontainer molecule[J]. Angew. Chem.Int. Ed.,2006,45:901-904 [38] MASTALERZ M. One-pot synthesis of a shape-persistent endo-functionalised nano-sized adamantoid compound[J].Chemical Communications,2008,39:4756-4758. [39] AVELLANEDA A,VALENTE P,BURGUN A,et al.Kinetically controlled porosity in a robust organic cage material[J].Angewandte Chemie,2013,52(13):3834-3837. [40] BURGUN A,VALENTE P,EVANS J D,et al.Endohedrally functionalised porous organic cages[J].Chemical Communications,2016,52(57):s1-s28. [41] DONOCADH P L,NEIL L C,DAVE J A,et al.Scalable synthesis for porous organic cages[J].Synthetic Communications,2011,41(14):2146-2151. [42] GIRI N,DAVIDSON C E,MELAUGH G,et al.Alkylated organic cages:from porous crystals to neat liquids[J].Chemical Science,2012,3(6):2153-2157. [43] LITTLE M A,CHONG S Y,SCHMIDTMANN M,et al.Guest control of structure in porous organic cages[J].Chemical Communications,2014,50(67):9465-9468. [44] MASTALERZ M,SCHNEIDER M W,OPPEL I M,et al.A salicylbisimine cage compound with high surface area and selective CO2/CH4 adsorption[J].Angewandte Chemie International Edition,2011,50(5):1046-1051. [45] ZHANG G,PRESLY O,WHITE F,et al.A permanent mesoporous organic cage with an exceptionally high surface area[J].Angewandte Chemie,2014,53(6):1542-1546. [46] MELAUGH G,GIRI N,DAVIDSON C E,et al.Designing and understanding permanent microporosity in liquids[J].Physical Chemistry Chemical Physics,2014,16(20):9422-9431. [47] BRIGGS M E,SLATER A G,LUNT N,et al.Dynamic flow synthesis of porous organic cages[J].Chemical Communications,2015,51(98):1-3. [48] SIGINER D A,WANG H P.Developments and applications of non-newtonian flows[M].US:American Society of Mechanical Engineers,1995. [49] HUMINIC G,HUMINIC A.Application of nanofluids in heat exchangers:a review[J].Renewable & Sustainable Energy Reviews,2012,16(8):5625-5638. [50] DEVENDIRAN D K,AMIRTHAM V A.A review on preparation,characterization,properties and applications of nanofluids[J]. Renewable & Sustainable Energy Reviews,2016,60:21-40. [51] GHADIMI A,SAIDUR R,METSELAAR H S C.A review of nanofluid stability properties and characterization in stationary conditions[J].International Journal of Heat & Mass Transfer, 2011,54(17/18):4051-4068. [52] YU W,XIE H.A review on nanofluids:preparation,stability mechanisms,and applications[J].Journal of Nanomaterials,2012. DOI:10.1155/2012/435873. [53] SIDIK N A C,MOHAMMED H A,ALAWI O A,et al.A review on preparation methods and challenges of nanofluids[J].International Communications in Heat & Mass Transfer,2014,54(5):115-125. [54] LI H,HUCK W T S.Polymers in nanotechnology[J].Current Opinion in Solid State & Materials Science,2002,6(1):3-8. [55] PARK H.Synthesis and structural characterization of new microporous framework materials[J]. Dissertations & Theses-Gradworks,2007,464(2):143-148. [56] 任浩,朱广山.有机多孔材料:合成策略与性质研究[J].化学学报,2015,73(6):587-599. REN H,ZHU G S.Porous organic frameworks:synthetic strategy and their applications[J].Acta Chim.Sinica,2015,73(6):587-599. [57] MALY K E.Assembly of nanoporous organic materials from molecular building blocks[J].Journal of Materials Chemistry,2009,19(13):1781-1787. [58] 邹桂敏.分子在纳米微孔材料中扩散行为的分子动力学模拟研究[D].太原:中北大学,2011. ZOU G M. Study on the molecular diffusion in nano-porous materials by molecular dynamics simulation[D].Taiyuan:North University of China,2011. [59] DEVAUX A,POPOVI? Z,BOSSART O,et al.Solubilisation of dye-loaded zeolite L nanocrystals[J].Microporous & Mesoporous Materials,2006,90(1-3):69-72. [60] 卫国英.多功能金属有机骨架材料的制备及气体吸附分离性能研究[D].长春:吉林大学,2015. WEI G Y. Multifunctional metal-organic framework materials preparation and gas adsorption/seperation research[D].Changchun:Jilin University,2015. [61] YAGHI O M,O'KEEFFE M,OCKWIG N W,et al.Reticular synthesis and the design of new materials[J].Nature,2003,423(6941):705-714. [62] 黄刚,陈玉贞,江海龙.金属有机骨架材料在催化中的应用[J].化学学报,2016,74(2):113-129. HUANG G,CHEN Y Z,JIANG H O.Metal-organic frameworks for catalysis[J].Acta Chim.Sinica,2016,74(2):113-129. [63] YANG L,JIANG S,ZHAO Y,et al.Boron-doped carbon nanotubes as metal-free electrocatalysts for the oxygen reduction reaction[M]//Current topics in microbiology and immnuology.Berlin:Springer-Verlag,2011:7132-7135. [64] YAMADA M,ARAI M,KURIHARA M,et al.Synthesis and isolation of cobalt hexacyanoferrate/chromate metal coordination nanopolymers stabilized by alkylamino ligand with metal elemental control[J].Journal of the American Chemical Society,2004,126(31):9482-9483. [65] LIU H,LIU B,LIN L C,et al.A hybrid absorption-adsorption method to efficiently capture carbon[J].Nature Communications,2014,5:5147-5147. [66] 江腾飞.有机多孔聚合物的合成及其吸附性能研究[D].杭州:浙江理工大学,2015. JIANG T F.Synthesis and adsorption performance of porous organic polymers[D].Hangzhou:Zhejiang Sci-tech University,2015. [67] 周宝龙,陈龙.共价有机多孔聚合物合成新策略[J].化学学报,2015,73(6):487-497. ZHOU B L,CHEN L.New strategies for the synthesis of covalent organic porous polymers[J].Acta Chim.Sinica,2015,73(6):487-497. [68] 朱祥,吕文杰,胡军,等.有机多孔聚合物CO2捕集及分离性能的研究进展[J].化工学报,2014,65(5):1553-1562. ZHU X,LU W J,HU J.Progress of CO2 capture and separation by porous organic polymers[J].CIESC Journal,2014,65(5):1553-1562. [69] 方梦祥,周旭萍,王涛,等.CO2化学吸收剂[J].化学进展,2015(12):1808-1814. FANG M X,ZHOU X P,WANG T,et al.Solvent development in CO2 chemical absorption[J].Progress in Chemistry,2015(12):1808-1814. [70] ZHANG F,YANG F,HUANG J,et al.Thermodynamics and kinetics of gas storage in porous liquids[J].Journal of Physical Chemistry B,2016,120(29):1287030. [71] QIN F,WANG S,KIM I,et al.Heat of absorption of CO2,in aqueous ammonia and ammonium carbonate/carbamate solutions[J]. International Journal of Greenhouse Gas Control,2011,5(3):405-412. [72] CARVALHO P J,KURNIA K A,COUTINHO J A.Dispelling some myths about the CO2 solubility in ionic liquids[J].Physical Chemistry Chemical Physics,2016,18(22):14757-14771. |
[1] | YANG Hanyue, KONG Lingzhen, CHEN Jiaqing, SUN Huan, SONG Jiakai, WANG Sicheng, KONG Biao. Decarbonization performance of downflow tubular gas-liquid contactor of microbubble-type [J]. Chemical Industry and Engineering Progress, 2023, 42(S1): 197-204. |
[2] | ZHENG Qian, GUAN Xiushuai, JIN Shanbiao, ZHANG Changming, ZHANG Xiaochao. Photothermal catalysis synthesis of DMC from CO2 and methanol over Ce0.25Zr0.75O2 solid solution [J]. Chemical Industry and Engineering Progress, 2023, 42(S1): 319-327. |
[3] | SUN Yuyu, CAI Xinlei, TANG Jihai, HUANG Jingjing, HUANG Yiping, LIU Jie. Optimization and energy-saving of a reactive distillation process for the synthesis of methyl methacrylate [J]. Chemical Industry and Engineering Progress, 2023, 42(S1): 56-63. |
[4] | WANG Yaogang, HAN Zishan, GAO Jiachen, WANG Xinyu, LI Siqi, YANG Quanhong, WENG Zhe. Strategies for regulating product selectivity of copper-based catalysts in electrochemical CO2 reduction [J]. Chemical Industry and Engineering Progress, 2023, 42(8): 4043-4057. |
[5] | LIU Yi, FANG Qiang, ZHONG Dazhong, ZHAO Qiang, LI Jinping. Cu facets regulation of Ag/Cu coupled catalysts for electrocatalytic reduction of carbon dioxide [J]. Chemical Industry and Engineering Progress, 2023, 42(8): 4136-4142. |
[6] | HUANG Yufei, LI Ziyi, HUANG Yangqiang, JIN Bo, LUO Xiao, LIANG Zhiwu. Research progress on catalysts for photocatalytic CO2 and CH4 reforming [J]. Chemical Industry and Engineering Progress, 2023, 42(8): 4247-4263. |
[7] | LOU Baohui, WU Xianhao, ZHANG Chi, CHEN Zhen, FENG Xiangdong. Advances in nanofluid for CO2 absorption and separation [J]. Chemical Industry and Engineering Progress, 2023, 42(7): 3802-3815. |
[8] | LYU Chao, ZHANG Xiwen, JIN Lijian, YANG Linjun. Efficient capture of CO2 by a new biphasic solvent-ionic liquid system [J]. Chemical Industry and Engineering Progress, 2023, 42(6): 3226-3232. |
[9] | MA Yuan, XIAO Qingyue, YUE Junrong, CUI Yanbin, LIU Jiao, XU Guangwen. CO xco-methanation over a Ni-based catalyst supported on CeO2-Al2O3 composite [J]. Chemical Industry and Engineering Progress, 2023, 42(5): 2421-2428. |
[10] | WANG Keju, ZHAO Cheng, HU Xiaomei, YUN Junge, WEI Ninghan, JIANG Xueying, ZOU Yun, CHEN Zhihang. Research progress of low temperature catalytic oxidation of VOCs by metal oxides [J]. Chemical Industry and Engineering Progress, 2023, 42(5): 2402-2412. |
[11] | HE Zhiyong, GUO Tianfo, WANG Jinli, LYU Feng. Progress of CO2/epoxide copolymerization catalyst [J]. Chemical Industry and Engineering Progress, 2023, 42(4): 1847-1859. |
[12] | FU Le, YANG Yang, XU Wenqing, GENG Zanbu, ZHU Tingyu, HAO Runlong. Research progress in CO2 capture technology using novel biphasic organic amine absorbent [J]. Chemical Industry and Engineering Progress, 2023, 42(4): 2068-2080. |
[13] | CHEN Chongming, ZENG Siming, LUO Xiaona, SONG Guosheng, HAN Zhongge, YU Jinxing, SUN Nannan. Preparation and performance of carbon supported potassium-based CO2 adsorbent derived from hyper-cross linked polymers [J]. Chemical Industry and Engineering Progress, 2023, 42(3): 1540-1550. |
[14] | WANG Qiuhua, WU Jiashuai, ZHANG Weifeng. Research progress of alkaline industrial solid wastes mineralization for carbon dioxide sequestration [J]. Chemical Industry and Engineering Progress, 2023, 42(3): 1572-1582. |
[15] | WANG Xiaoyue, ZHANG Weimin, YAO Zhengyang, GUO Xiaohong, LI Congming. Research progress of reverse water gas shift reaction [J]. Chemical Industry and Engineering Progress, 2023, 42(3): 1583-1594. |
Viewed | ||||||||||||||||||||||||||||||||||||||||||||||||||
Full text 911
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
Abstract 440
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
京ICP备12046843号-2;京公网安备 11010102001994号 Copyright © Chemical Industry and Engineering Progress, All Rights Reserved. E-mail: hgjz@cip.com.cn Powered by Beijing Magtech Co. Ltd |