Ambient temperature NO2 removal by adsorption on transition metal ion-exchanged chabazite zeolites

Results in Engineering - Tập 18 - Trang 101134 - 2023
Mingzhe Sun1,2, Calvin Ku1, Zeyu Tao1,2, Tianqi Wang2, Chengyan Wen3,4, Aamir Hanif1,2, Chenguang Wang4,5, Qinfen Gu6, Patrick Sit1, Jin Shang1,2
1School of Energy and Environment, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong SAR, PR China
2City University of Hong Kong Shenzhen Research Institute, Nanshan District, Shenzhen, 518000, PR China
3School of Energy and Environment, Southeast University, 211189, Nanjing, PR China
4Chinese Academy of Sciences, Guangzhou Institute of Energy Conversion, 510640, Guangzhou, PR China
5CAS Key Laboratory of Renewable Energy, Guangzhou 510640, PR China
6Australian Synchrotron, 800 Blackburn Road, Clayton 3168, Victoria, Australia

Tài liệu tham khảo

Chen, 2013, China tackles the health effects of air pollution, Lancet (London, England), 382, 10.1016/S0140-6736(13)62064-4 Feigin, 2016, Global burden of stroke and risk factors in 188 countries, during 1990–2013: a systematic analysis for the Global Burden of Disease Study 2013, Lancet Neurol., 15, 913, 10.1016/S1474-4422(16)30073-4 Qin, 2010, Microstructure characterization and NO2-sensing properties of tungsten oxide nanostructures, Sensor. Actuator. B Chem., 150, 339, 10.1016/j.snb.2010.06.063 Edwards, 2014, High winter ozone pollution from carbonyl photolysis in an oil and gas basin, Nature, 514, 351, 10.1038/nature13767 Lelieveld, 2008, Atmospheric oxidation capacity sustained by a tropical forest, Nature, 452, 737, 10.1038/nature06870 Indrehus, 2001, CO and NO2 pollution in a long two-way traffic road tunnel: investigation of NO2/NOx ratio and modelling of NO2 concentration, J. Environ. Monit., 3, 220, 10.1039/b009493p Ji, 2022, NO2 and PM2. 5 air pollution co-exposure and temperature effect modification on pre-mature mortality in advanced age: a longitudinal cohort study in China, Environ. Health, 21, 1, 10.1186/s12940-022-00901-8 Girard, 2009, Technical advantages of vanadium SCR systems for diesel NOx control in emerging markets, SAE International Journal of Fuels and Lubricants, 1, 488, 10.4271/2008-01-1029 Lambert, 2004, Technical advantages of urea SCR for light-duty and heavy-duty diesel vehicle applications, SAE Trans., 580 Muzio, 2002, Overview and status of post-combustion NOx control: SNCR, SCR and hybrid technologies, Int. J. Environ. Pollut., 17, 4, 10.1504/IJEP.2002.000655 Ebrahim, 2013, Interactions of NO2 with Zr-based MOF: effects of the size of organic linkers on NO2 adsorption at ambient conditions, Langmuir, 29, 168, 10.1021/la302869m Hanif, 2021, Ambient NO2 adsorption removal by Mg–Al layered double hydroxides and derived mixed metal oxides, J. Clean. Prod., 10.1016/j.jclepro.2021.127956 Sun, 2021, Chrysanthemum flower like silica with highly dispersed Cu nanoparticles as a high-performance NO2 adsorbent, J. Hazard Mater., 10.1016/j.jhazmat.2021.126400 Nowicki, 2010, Sorption properties of active carbons obtained from walnut shells by chemical and physical activation, Catal. Today, 150, 107, 10.1016/j.cattod.2009.11.009 Pietrzak, 2010, Sawdust pellets from coniferous species as adsorbents for NO2 removal, Bioresour. Technol., 101, 907, 10.1016/j.biortech.2009.09.017 Levasseur, 2012, Mesoporous silica SBA-15 modified with copper as an efficient NO 2 adsorbent at ambient conditions, J. Colloid Interface Sci., 377, 347, 10.1016/j.jcis.2012.03.072 Ebrahim, 2013, Ce (III) doped Zr-based MOFs as excellent NO2 adsorbents at ambient conditions, ACS Appl. Mater. Interfaces, 5, 10565, 10.1021/am402305u Levasseur, 2010, Reactive adsorption of NO2 on copper-based metal− organic framework and graphite oxide/metal− organic framework composites, ACS Appl. Mater. Interfaces, 2, 3606, 10.1021/am100790v Bashkova, 2011, Reactive adsorption of NO2 at ambient conditions on iron‐containing polymer‐based porous carbons, ChemSusChem, 4, 404, 10.1002/cssc.201000296 Florent, 2013, NO2 adsorption at ambient temperature on urea-modified ordered mesoporous carbon, Carbon, 63, 283, 10.1016/j.carbon.2013.06.081 Levasseur, 2011, Effect of reduction treatment on copper modified activated carbons on NO x adsorption at room temperature, Langmuir, 27, 5354, 10.1021/la104948d Levasseur, 2011, Role of Zr4+ cations in NO2 adsorption on Ce1-x Zr x O2 mixed oxides at ambient conditions, Langmuir, 27, 9379, 10.1021/la201338w Shang, 2020, Transition‐metal‐containing porphyrin metal–organic frameworks as π‐backbonding adsorbents for NO2 removal, Angew. Chem. Int. Ed., 59, 19680, 10.1002/anie.202007054 Shang, 2020, NO2 removal by adsorption on transition-metal-based layered double hydroxides, ACS ES&T Engineering, 1, 375, 10.1021/acsestengg.0c00121 Shang, 2021, The low-temperature NO2 removal by tailoring metal node in porphyrin-based metal-organic frameworks, Sci. Total Environ., 801, 10.1016/j.scitotenv.2021.149710 Wang, 1998, Adsorption separation of low concentrations of CO2 and NO2 by synthetic zeolites, Energy Fuel., 12, 1055, 10.1021/ef980109g Colombo, 2012, NO2 adsorption on Fe-and Cu-zeolite catalysts: the effect of the catalyst red–ox state, Appl. Catal. B Environ., 111, 433, 10.1016/j.apcatb.2011.10.031 Henao, 2004, Theoretical and experimental study of NO/NO2 adsorption over Co-exchanged type-A zeolite, J. Mol. Catal. Chem., 207, 195, 10.1016/S1381-1169(03)00501-6 Gao, 2015, Effects of Si/Al ratio on Cu/SSZ-13 NH 3-SCR catalysts: implications for the active Cu species and the roles of Brønsted acidity, J. Catal., 331, 25, 10.1016/j.jcat.2015.08.004 Martín, 2015, Efficient synthesis of the Cu-SSZ-39 catalyst for DeNOx applications, Chem. Commun., 51, 11030, 10.1039/C5CC03200H Kwak, 2010, Excellent activity and selectivity of Cu-SSZ-13 in the selective catalytic reduction of NOx with NH 3, J. Catal., 275, 187, 10.1016/j.jcat.2010.07.031 Sun, 2019, Transition metal cation-exchanged SSZ-13 zeolites for CO2 capture and separation from N2, Chem. Eng. J., 370, 1450, 10.1016/j.cej.2019.03.234 Yang, 2003 Takahashi, 2001, Cu (I)− Y-zeolite as a superior adsorbent for diene/olefin separation, Langmuir, 17, 8405, 10.1021/la011196z Rousseau, 1987 Nightingale Jr, 1959, Phenomenological theory of ion solvation. Effective radii of hydrated ions, J. Phys. Chem. A, 63, 1381 Ohtaki, 1977, The structures of hydrated divalent transition-metal ions in solution, 163 Jia, 1998, Comparison of conventional and solid-state ion exchange procedures for the incorporation of lanthanum in H-beta zeolite, Microporous Mesoporous Mater., 24, 69, 10.1016/S1387-1811(98)00144-9 Karge, 1991, Introduction of cations into zeolites by solid-state reaction, 43, 10.1016/S0167-2991(08)61555-4 Carvalho, 2017, Design of nanocomposites with cobalt encapsulated in the zeolite micropores for selective synthesis of isoparaffins in Fischer–Tropsch reaction, Catal. Sci. Technol., 7, 5019, 10.1039/C7CY01945A Davar, 2014, Synthesis and characterization of cobalt oxide nanocomposite based on the Co3O4–zeolite Y, Superlattice. Microst., 66, 85, 10.1016/j.spmi.2013.11.024 Ebrahim, 2014, Effect of amine modification on the properties of zirconium–carboxylic acid based materials and their applications as NO2 adsorbents at ambient conditions, Microporous Mesoporous Mater., 188, 149, 10.1016/j.micromeso.2014.01.009 Levasseur, 2011, Interactions of NO2 at ambient temperature with cerium–zirconium mixed oxides supported on SBA-15, J. Hazard Mater., 197, 294, 10.1016/j.jhazmat.2011.09.087 Pietrzak, 2007, Reactive adsorption of NO2 at dry conditions on sewage sludge-derived materials, Environ. Sci. Technol., 41, 7516, 10.1021/es071863w Levasseur, 2011, Copper-modified activated carbons as adsorbents of NO under ambient conditions, Adsorpt. Sci. Technol., 29, 831, 10.1260/0263-6174.29.8.831 De, 2016, Critical design of heterogeneous catalysts for biomass valorization: current thrust and emerging prospects, Catal. Sci. Technol., 6, 7364, 10.1039/C6CY01370H Szanyi, 2003, The adsorption of NO 2 and the NO+ O 2 reaction on Na-Y, FAU: an in situ FTIR investigation, Phys. Chem. Chem. Phys., 5, 4045, 10.1039/B306585E Natter, 2001, Crystallite growth of nanocrystalline transition metals studied in situ by high temperature synchrotron X-ray diffraction, Scripta Mater., 44, 2321, 10.1016/S1359-6462(01)00908-3 Guttman, 1962, Absolute infrared intensity measurements on nitrogen dioxide and dinitrogen tetroxide, J. Quant. Spectrosc. Radiat. Transf., 2, 1, 10.1016/0022-4073(62)90011-0 Han, 2018, Reversible adsorption of nitrogen dioxide within a robust porous metal–organic framework, Nat. Mater., 17, 691, 10.1038/s41563-018-0104-7 Sedlmair, 2003, An in situ IR study of the NO x adsorption/reduction mechanism on modified Y zeolites, Phys. Chem. Chem. Phys., 5, 1897, 10.1039/b209325a Shannon, 1985, The nature of the nonframework aluminum species formed during the dehydroxylation of HY, J. Phys. Chem. A, 89, 4778 Hadjiivanov, 2000, Identification of neutral and charged N x O y surface species by IR spectroscopy, Catal. Rev., 42, 71, 10.1081/CR-100100260 Bordiga, 1995, Fourier-transform infrared study of CO adsorbed at 77 K on H-mordenite and alkali-metal-exchanged mordenites, Langmuir, 11, 527, 10.1021/la00002a027 Wang, 2001, Cooperative and competitive adsorption mechanism of NO2, NO, and H2O on H-type mordenite, Ind. Eng. Chem. Res., 40, 1864, 10.1021/ie000895o Ren, 2012, Ordered mesoporous metal oxides: synthesis and applications, Chem. Soc. Rev., 41, 4909, 10.1039/c2cs35086f