Direct CO2 capture from ambient air using K2CO3/Al2O3 composite sorbent

International Journal of Greenhouse Gas Control - Tập 17 - Trang 332-340 - 2013
Janna V. Veselovskaya1,2, Vladimir S. Derevschikov1,2, Tatyana Yu. Kardash1,3, Olga A. Stonkus1, Tatiana A. Trubitsina4, Aleksey G. Okunev1,2
1Boreskov Institute of Catalysis SB RAS, Akademika Lavrentieva av. 5, Novosibirsk 630090, Russia
2Center for Energy Efficient Technologies, Novosibirsk State University, Pirogova str. 2, Novosibirsk 630090, Russia
3Chair of Physical Methods of Solid Research, Department of Physics, Novosibirsk State University, Pirogova str. 2, Novosibirsk 630090, Russia
4Aeroservice Ltd., Inzhenernaya str. 20, Novosibirsk 630090, Russia

Tài liệu tham khảo

Baciocchi, 2006, Process design and energy requirements for the capture of carbon dioxide from air, Chemical Engineering and Processing, 45, 1047, 10.1016/j.cep.2006.03.015 Bandi, 1995, CO2 recycling for hydrogen storage and transportation – electrochemical CO2 removal and fixation, Energy Conversion and Management, 36, 899, 10.1016/0196-8904(95)00148-7 Belmabkhout, 2009, Adsorption of CO2-containing gas mixtures over amine-bearing pore-expanded MCM-41 silica: application for gas purification, Industrial and Engineering Chemistry Research, 49, 359, 10.1021/ie900837t Bollini, 2011, Oxidative degradation of aminosilica adsorbents relevant to postcombustion CO2 capture, Energy and Fuels, 25, 2416, 10.1021/ef200140z Chaikittisilp, 2011, Poly(allylamine)–mesoporous silica composite materials for CO2 capture from simulated flue gas or ambient air, Industrial and Engineering Chemistry Research, 50, 14203, 10.1021/ie201584t Chaikittisilp, 2011, Mesoporous alumina-supported amines as potential steam-stable adsorbents for capturing CO2 from simulated flue gas and ambient air, Energy and Fuels, 25, 5528, 10.1021/ef201224v Chang, 2003, In-situ infrared study of CO2 adsorption on SBA-15 grafted with γ-(aminopropyl)triethoxysilane, Energy and Fuels, 17, 468, 10.1021/ef020176h Cheary, 2004, Fundamental parameters line profile fitting in laboratory diffractometers, Journal of Research of the National Institute of Standards and Technology, 109, 1, 10.6028/jres.109.002 Choi, 2009, Adsorbent materials for carbon dioxide capture from large anthropogenic point sources, ChemSusChem, 2, 796, 10.1002/cssc.200900036 Choi, 2011, Application of amine-tethered solid sorbents for direct CO2 capture from the ambient air, Environmental Science and Technology, 45, 2420, 10.1021/es102797w Choi, 2011, Amine-tethered solid adsorbents coupling high adsorption capacity and regenerability for CO2 capture from ambient air, ChemSusChem, 4, 628, 10.1002/cssc.201000355 Choi, 2012, Modification of the Mg/DOBDC MOF with amines to enhance CO2 adsorption from ultradilute gases, Journal of Physical Chemistry Letters, 3, 1136, 10.1021/jz300328j D’Alessandro, 2010, Carbon dioxide capture: prospects for new materials, Angewandte Chemie International Edition, 49, 6058, 10.1002/anie.201000431 Davis, 2009, Thermal degradation of monoethanolamine at stripper conditions, Energy Procedia, 1, 327, 10.1016/j.egypro.2009.01.045 Duan, 2012, Ab initio thermodynamic study of the CO2 capture properties of potassium carbonate sesquihydrate, K2CO3·1.5H2O, Journal of Physical Chemistry C, 116, 14461, 10.1021/jp303844t Franchi, 2005, Applications of pore-expanded mesoporous silica. 2. Development of a high-capacity, water-tolerant adsorbent for CO2, Industrial and Engineering Chemistry Research, 44, 8007, 10.1021/ie0504194 Gebald, 2011, Amine-based nanofibrillated cellulose as adsorbent for CO2 capture from air, Environmental Science and Technology, 45, 9101, 10.1021/es202223p Goeppert, 2011, Carbon dioxide capture from the air using a polyamine based regenerable solid adsorbent, Journal of the American Chemical Society, 133, 20164, 10.1021/ja2100005 Goeppert, 2012, Air as the renewable carbon source of the future: an overview of CO2 capture from the atmosphere, Energy Environmental Science, 5, 7833, 10.1039/c2ee21586a Hayashi, 1998, Efficient recovery of carbon dioxide from flue gases of coal-fired power plants by cyclic fixed-bed operations over K2CO3-on-carbon, Industrial and Engineering Chemistry Research, 37, 185, 10.1021/ie9704455 Heydari-Gorji, 2011, Degradation of amine-supported CO2 adsorbents in the presence of oxygen-containing gases, Microporous and Mesoporous Materials, 145, 146, 10.1016/j.micromeso.2011.05.010 Huang, 2002, Amine-grafted MCM-48 and silica xerogel as superior sorbents for acidic gas removal from natural gas, Industrial and Engineering Chemistry Research, 42, 2427, 10.1021/ie020440u Jones, 2011, CO2 capture from dilute gases as a component of modern global carbon management, Annual Review of Chemical and Biomolecular Engineering, 2, 31, 10.1146/annurev-chembioeng-061010-114252 Keith, 2006, Climate strategy with CO2 capture from the air, Climatic Change, 74, 17, 10.1007/s10584-005-9026-x Kulkarni, 2012, Analysis of equilibrium – based TSA processes for direct capture of CO2 from air, Industrial and Engineering Chemistry Research, 51, 8631, 10.1021/ie300691c Lee, 2007, Dry potassium-based sorbents for CO2 capture, Catalysis Surveys from Asia, 11, 171, 10.1007/s10563-007-9035-z Lee, 2006, CO2 absorption and regeneration of alkali metal-based solid sorbents, Catalysis Today, 111, 385, 10.1016/j.cattod.2005.10.051 Lee, 2011, Development of new alumina-modified sorbents for CO2 sorption and regeneration at temperatures below 200°C, Fuel, 90, 1465, 10.1016/j.fuel.2010.11.006 Lidin, 1995 MacDowell, 2010, An overview of CO2 capture technologies, Energy Environmental Science, 3, 1645, 10.1039/c004106h Mahmoudkhani, 2009, Low-energy sodium hydroxide recovery for CO2 capture from atmospheric air – thermodynamic analysis, International Journal of Greenhouse Gas Control, 3, 376, 10.1016/j.ijggc.2009.02.003 McDonald, 2012, Capture of carbon dioxide from air and flue gas in the alkylamine-appended metal–organic framework mmen-Mg2(dobpdc), Journal of the American Chemical Society, 134, 7056, 10.1021/ja300034j Nikulshina, 2006, CO2 capture from air and co-production of H2 via the Ca(OH)2–CaCO3 cycle using concentrated solar power – thermodynamic analysis, Energy, 31, 1715, 10.1016/j.energy.2005.09.014 Nikulshina, 2008, Feasibility of Na-based thermochemical cycles for the capture of CO2 from air – thermodynamic and thermogravimetric analyses, Chemical Engineering Journal, 140, 62, 10.1016/j.cej.2007.09.007 Okunev, 2000, Sorption of carbon dioxide from wet gases by K2CO3-in-porous matrix: influence of the matrix nature, Reaction Kinetics and Catalysis Letters, 71, 355, 10.1023/A:1010395630719 Okunev, 2000, Sorption of carbon dioxide by the composite sorbent of potassium carbonate in porous matrix, Russian Chemical Bulletin, 82, 363 Okunev, 2003, Sorption of carbon dioxide by the composite sorbent “potassium carbonate in porous matrix”, Russian Chemical Bulletin, 52, 359, 10.1023/A:1023450614383 Pielke, 2009, An idealized assessment of the economics of air capture of carbon dioxide in mitigation policy, Environment Science and Policy, 12, 216, 10.1016/j.envsci.2009.01.002 Polak, R.B., Steinberg, M., 2012. Carbon dioxide removal systems. US Patent 2012/0003722 A1. Rostrup-Nielsen, 2007, High temperature methanation: sintering and structure sensitivity, Applied Catalysis A: General, 330, 134, 10.1016/j.apcata.2007.07.015 Serna-Guerrero, 2008, New insights into the interactions of CO2 with amine-functionalized silica, Industrial and Engineering Chemistry Research, 47, 9406, 10.1021/ie801186g Sharonov, 2001, Sorption of CO2 from humid gases on potassium carbonate supported by porous matrix, Russian Journal of Applied Chemistry, 74, 409, 10.1023/A:1012777124164 Sharonov, 2001, Kinetics of carbon dioxide sorption by the composite material K2CO3 in Al2O3, Russian Chemical Bulletin, 82, 363 Sharonov, 2004, Kinetics of carbon dioxide sorption by a composite material “K2CO3 in Al2O3”, Reaction Kinetics and Catalysis Letters, 82, 363, 10.1023/B:REAC.0000034849.15412.d2 Socolow, 2011, Direct air capture of CO2 with chemicals, A Technology Assessment for the APS Panel on Public Affairs Stolaroff, 2008, Carbon dioxide capture from atmospheric air using sodium hydroxide spray, Environmental Science and Technology, 42, 2728, 10.1021/es702607w Strazisar, 2003, Degradation pathways for monoethanolamine in a CO2 capture facility, Energy and Fuels, 17, 1034, 10.1021/ef020272i Stuckert, 2011, CO2 capture from the atmosphere and simultaneous concentration using zeolites and amine-grafted SBA-15, Environmental Science and Technology, 45, 10257, 10.1021/es202647a Stucki, 1995, Coupled CO2 recovery from the atmosphere and water electrolysis: feasibility of a new process for hydrogen storage, International Journal of Hydrogen Energy, 20, 653, 10.1016/0360-3199(95)00007-Z Wang, 2011, CO2 capture by solid adsorbents and their applications: current status and new trends, Energy Environmental Science, 4, 42, 10.1039/C0EE00064G Yu, 2008, Recent advances in CO2 capture and utilization, ChemSusChem, 1, 893, 10.1002/cssc.200800169 Yue, 2008, Efficient CO2 capturer derived from as-synthesized MCM-41 modified with amine, Chemistry-A European Journal, 14, 3442, 10.1002/chem.200701467 Zeman, 2007, Energy and material balance of CO2 capture from ambient air, Environmental Science and Technology, 41, 7558, 10.1021/es070874m Zhao, 2009, CO2 absorption using dry potassium-based sorbents with different supports, Energy and Fuels, 23, 4683, 10.1021/ef900182d Zhao, 2009, Carbonation and hydration characteristics of dry potassium-based sorbents for CO2 capture, Energy and Fuels, 23, 1766, 10.1021/ef800889m Zhao, 2010, Multiple-cycles behavior of K2CO3/Al2O3 for CO2 capture in a fluidized-bed reactor, Energy and Fuels, 24, 1009, 10.1021/ef901018f Zhao, 2012, K2CO3/Al2O3 for capturing CO2 in flue gas from power plants. Part 1: carbonation behaviors of K2CO3/Al2O3, Energy and Fuels, 26, 1401, 10.1021/ef200725z Zhao, 2012, K2CO3/Al2O3 for capturing CO2 in flue gas from power plants. Part 2: regeneration behaviors of K2CO3/Al2O3, Energy and Fuels, 26, 1406, 10.1021/ef200866y Zhao, 2012, K2CO3/Al2O3 for capturing CO2 in flue gas from power plants. Part 3: CO2 capture behaviors of K2CO3/Al2O3 in a bubbling fluidized-bed reactor, Energy and Fuels, 26, 3062, 10.1021/ef300225a