1 |
Yuan M Y , Narakornpijit K , Haghpanah R , et al . Consideration of a nitrogen-selective membrane for post-combustion carbon capture through process modeling and optimization[J]. Journal of Membrane Science, 2014, 465: 177-184.
|
2 |
Ehlert D , Zickfeld K . Irreversible ocean thermal expansion under carbon dioxide removal[J]. Earth System Dynamics, 2018, 9(1): 197-210.
|
3 |
Bobicki E R , Liu Q X , Xu Z H , et al . Carbon capture and storage using alkaline industrial wastes[J]. Progress in Energy & Combustion Science, 2012, 38(2): 302-320.
|
4 |
Nikolaidis G N , Kikkinides E S , Georgiadis M C . An integrated two-stage P/VSA process for post-combustion CO2 capture using combinations of adsorbents zeolite 13X and Mg-MOF-74[J]. Industrial & Engineering Chemistry Research, 2017, 56(4): 974-988.
|
5 |
Leung D Y C , Caramanna G , Marotovaler M M . An overview of current status of carbon dioxide capture and storage technologies[J]. Renewable and Sustainable Energy Reviews, 2014, 39: 426-443.
|
6 |
Brunetti A , Scura F , Barbieri G , et al . Membrane technologies for CO2 separation[J]. Journal of Membrane Science, 2010, 359(1): 115-125.
|
7 |
Favre E . Carbon dioxide recovery from post-combustion processes: can gas permeation membranes compete with absorption?[J]. Journal of Membrane Science, 2007, 294(1): 50-59.
|
8 |
Castel C , Lei W , Corriou J P , et al . Steady vs unsteady membrane gas separation processes[J]. Chemical Engineering Science, 2018, 183: 136-147.
|
9 |
Sreenivasulu B , Gayatri D V , Sreedhar I , et al . A journey into the process and engineering aspects of carbon capture technologies[J]. Renewable & Sustainable Energy Reviews, 2015, 41(C): 1324-1350.
|
10 |
王勇 . 多孔石墨烯(类石墨烯)用于低浓度CO2烟道气分离的电荷筛分机理研究[D]. 太原: 太原理工大学, 2016.
|
|
Wang Y . Electrostatic sieving mechanism study of porous graphene (graphene-like material) for the separation of gases with concentration of CO2 [D]. Taiyuan: Taiyuan University of Technology, 2016.
|
11 |
Zhang L , Wang X , Yu R , et al . Hollow fiber membrane separation process in the presence of gaseous and particle impurities for post-combustion CO2 capture[J]. International Journal of Green Energy, 2017, 14(1): 15-23.
|
12 |
Mat N C , Lipscomb G G . Membrane process optimization for carbon capture[J]. International Journal of Greenhouse Gas Control, 2017, 62: 1-12.
|
13 |
Saeed M , Rafiq S , Bergersen L H , et al . Tailoring of water swollen PVA membrane for hosting carriers in CO2 facilitated transport membranes[J]. Separation and Purification Technology, 2017, 179: 550-560.
|
14 |
Zhang B , Shen G L , Wu Y H , et al . Preparation and characterization of carbon membranes derived from poly(phthalazinone ether sulfone) for gas separation[J]. Industrial & Engineering Chemistry Research, 2009, 48(6): 346-350.
|
15 |
Rochana P , Ozdogan E , Lee K , et al . Theoretical and experimental investigations of N2-selective membranes[J]. Energy Procedia, 2013, 37: 1093-1103.
|
16 |
Dong X L , Huang K , Liu S N , et al . Synthesis of zeolitic imidazolate framework-78 molecular-sieve membrane: defect formation and elimination[J]. Journal of Materials Chemistry, 2012, 22(36): 19222-19227.
|
17 |
Shamsaei E . Rapid synthesis of ultrathin, defect-free ZIF-8 membranes via chemical vapour modification of a polymeric support[J]. Chemical Communications, 2015, 51(57): 11474-11477.
|
18 |
Mao Y Y , Li J W , Cao W , et al . Pressure-assisted synthesis of HKUST-1 thin film on polymer hollow fiber at room temperature toward gas separation[J]. ACS Applied Materials & Interfaces, 2014, 6(6): 4473-4479.
|
19 |
Xu G , Yao J , Wang K , et al . Preparation of ZIF-8 membranes supported on ceramic hollow fibers from a concentrated synthesis gel[J]. Journal of Membrane Science, 2011, 385: 187-193.
|
20 |
Li H , Han L , Hou J W , et al . Oriented zeolitic imidazolate framework membranes within polymeric matrices for effective N2/CO2 separation[J]. Journal of Membrane Science, 2019, 572: 82-91.
|
21 |
侯蒙杰, 张新儒, 王永洪, 等 . 聚乙烯胺/埃洛石纳米管混合基质膜的制备及其CO2/N2分离[J]. 化工学报, 2018, 69(9): 4106-4113.
|
|
Hou M J , Zhang X R , Wang Y H , et al . Preparation of PVAm mixed matrix membranes by incorporating halloysite nanotubes for CO2/N2 separation[J]. CIESC Journal, 2018, 69(9): 4106-4113.
|
22 |
Wang Y H , Zhang X R , Li J P , et al . Enhancing the CO2 separation performance of SPEEK membranes by incorporation of polyaniline-decorated halloysite nanotubes[J]. Journal of Membrane Science, 2019, 573: 602-611.
|
23 |
Zhang X R , Zhang T , Wang Y H , et al . Mixed-matrix membranes based on Zn/Ni-ZIF-8-PEBA for high performance CO2 separation[J]. Journal of Membrane Science, 2018, 560: 38-46.
|
24 |
Isaeva V I , Barkova M I , Kustov L M , et al . In situ synthesis of novel ZIF-8 membranes on polymeric and inorganic supports[J]. Journal of Materials Chemistry A, 2015, 3(14): 7469-7476.
|
25 |
Li Y B , Wee L H , Martens J A , et al . Interfacial synthesis of ZIF-8 membranes with improved nanofiltration performance[J]. Journal of Membrane Science, 2017, 523: 561-566.
|
26 |
Yao J F , Dong D H , Li D , et al . Contra-diffusion synthesis of ZIF-8 films on a polymer substrate[J]. Chemical Communications, 2011, 47(9): 2559-2561.
|
27 |
Zhang X F , Liu Y G , Li S H , et al . New membrane architecture with high performance: ZIF-8 membrane supported on vertically aligned ZnO nanorods for gas permeation and separation[J]. Chemistry of Materials, 2014, 26(5): 1975-1981.
|
28 |
Nordin N A H M , Ismail A F , Mustafa A , et al . Aqueous room temperature synthesis of zeolitic imidazole framework-8 (ZIF-8) with various concentrations of triethylamine[J]. RSC Advances, 2014, 4(63): 33292-33300.
|
29 |
James J B , Lin Y S . Thermal stability of ZIF-8 membranes for gas separations[J]. Journal of Membrane Science, 2017, 532: 9-19.
|
30 |
Bux H , Chmelik C , Krishna R , et al . Ethene/ethane separation by the MOF membrane ZIF-8: molecular correlation of permeation, adsorption, diffusion[J]. Journal of Membrane Science, 2011, 369(1/2): 284-289.
|