Journal of Inorganic Materials, Volume. 40, Issue 7, 833(2025)
[1] GEISSLER C H, MARAVELIAS C T. Economic, energetic, and environmental analysis of lignocellulosic biorefineries with carbon capture[J]. Applied Energy, 117539(2021).
[2] VOROKHTA M, KUSDHANY M I M, ŠVÁBOVÁ M et al. Hierarchically porous carbon foams coated with carbon nitride: insights into adsorbents for pre-combustion and post-combustion CO2 separation[J]. Separation and Purification Technology, 129054(2025).
[3] AKEEB O, WANG L, XIE W G et al. Post-combustion CO2 capture
[4] ZHOU C G, YU S N, MA K et al. Amine-functionalized mesoporous monolithic adsorbents for post-combustion carbon dioxide capture[J]. Chemical Engineering Journal, 127675(2021).
[5] MANIARASU R, RATHORE S K, MURUGAN S. Biomass-based activated carbon for CO2 adsorption--a review[J]. Energy & Environment, 1674(2023).
[6] XIN H L, ZHOU S N, XU S Y et al. Functionalized linker to form high-symmetry adsorption sites in micropore COF for CO2 capture and separation: insight from GCMC simulations[J]. Journal of Materials Science, 6282(2022).
[7] KWON S H, HIREMATH V, NANOTI A et al. MgO-based composites for high pressure CO2 capture: a first-principles theoretical and experimental investigation[J]. Korean Journal of Chemical Engineering, 2990(2023).
[8] YI D W, DU H L, LI Y F et al. Study on green controllable preparation of coal gangue-based 13-X molecular sieves and its CO2 capture application[J]. Coatings, 1886(2023).
[9] LIU Q H, FANG Y P, MIAO C H et al. Preparation of ZSM-5 molecular sieve modified by Kaolin and its CO2 adsorption performance investigation[J]. Microporous and Mesoporous Materials, 112678(2023).
[10] ODEDAIRO T, BALASAMY R J, AL-KHATTAF S. Influence of mesoporous materials containing ZSM-5 on alkylation and cracking reactions[J]. Journal of Molecular Catalysis A: Chemical, 21(2011).
[11] LIU T T, GUO Y Y, LUO L et al. Interactive adsorption mechanism and product distribution of impurity gases on CO2 adsorption over amine-grafted ZSM-5/SBA-16 adsorbent[J]. Fuel, 129307(2023).
[12] TIAN D, CHEN Y H, LU X Y et al. Facile preparation of mesoporous MCM-48 containing silver nanoparticles with fly ash as raw materials for CO catalytic oxidation[J]. Micromachines, 841(2021).
[13] BORCĂNESCU S, POPA A, VERDEȘ O et al. Functionalized ordered mesoporous MCM-48 silica: synthesis, characterization and adsorbent for CO2 capture[J]. International Journal of Molecular Sciences, 10345(2023).
[14] JIA W H, LI Q Y, ZHANG L N et al. Highly efficient photocatalytic reduction of CO2 on amine-functionalized Ti-MCM-41 zeolite[J]. Journal of Nanoparticle Research, 288(2020).
[15] SUBA M, POPA A, VERDEȘ O et al. Ni and Ce grafted ordered mesoporous silica KIT-6 for CO2 adsorption[J]. Catalysts, 1339(2022).
[16] CHEREVOTAN A, RAY B, YADAV A et al. Tuning the hybridization and charge polarization in metal nanoparticles dispersed over Schiff base functionalized SBA-15 enhances CO2 capture and conversion to formic acid[J]. Journal of Materials Chemistry A, 18354(2022).
[17] CHENG Z B, CHENG Q P. Performance of CO2 adsorption by hybrid amine-functionalized MCM-41[J]. Desalination and Water Treatment, 142(2022).
[18] WANG X, GUO Q J, ZHAO J et al. Mixed amine-modified MCM-41 sorbents for CO2 capture[J]. International Journal of Greenhouse Gas Control, 90(2015).
[19] HE C, LI J J, LI P et al. Comprehensive investigation of Pd/ZSM-5/MCM-48 composite catalysts with enhanced activity and stability for benzene oxidation[J]. Applied Catalysis B: Environmental, 466(2010).
[20] WANG J, ZHANG M Z, LI G et al. Ultrafine Au nanoparticles confined in three-dimensional mesopores of MCM-48 for efficient and regenerable Hg0 removal sorbent in H2S and H2O containing natural gas.[J]. Fuel, 119479(2021).
[21] QI T T, SHI J, WANG X S et al. Synthesis of hierarchical ZSM-5 zeolite in a rotating packed bed: mechanism, property and application[J]. Microporous and Mesoporous Materials, 110679(2021).
[22] KIM S, LAUTERBACH J. Synthesis of ZSM-5 catalysts
[23] XIA Y D, MOKAYA R. On the synthesis and characterization of ZSM-5/MCM-48 aluminosilicate composite materials[J]. Journal of Materials Chemistry, 863(2004).
[24] WILFONG W C, KAIL B W, JONES C W et al. Spectroscopic investigation of the mechanisms responsible for the superior stability of hybrid class 1/class 2 CO2 sorbents: a new class 4 category[J]. ACS Applied Materials & Interfaces, 12780(2016).
[25] FU L K, MA J J, LI S X et al. Mixed-amine modified mesocellular siliceous foam: improving the dispersity of polyethylenimine for CO2 adsorption[J]. Materials Science and Engineering: B, 115172(2021).
[26] ZHANG G J, ZHAO P Y, HAO L X et al. A novel amine double functionalized adsorbent for carbon dioxide capture using original mesoporous silica molecular sieves as support[J]. Separation and Purification Technology, 516(2019).
[27] WANG Z L, PANG Y H, GUO H X et al. Increased CO2 capture capacity
[28] SANZ-PÉREZ E S, LOBATO B, LOPEZ-ANTON M A et al. Effectiveness of amino-functionalized sorbents for CO2 capture in the presence of Hg.[J]. Fuel, 117250(2020).
[29] YUAN Y, WEI J W, GENG L L et al. An amine-bifunctionalization strategy with Beta/KIT-6 composite as a support for CO2 adsorbent preparation[J]. RSC Advances, 34187(2020).
[30] KAUFFMAN K L, CULP J T, GOODMAN A et al. FT-IR study of CO2 adsorption in a dynamic copper(II) benzoate-pyrazine host with CO2-CO2 interactions in the adsorbed state[J]. The Journal of Physical Chemistry C, 1857(2011).
[31] HAN S Y, MENG Y, AIHEMAITI A et al. Biogas upgrading with various single and blended amines solutions: capacities and kinetics[J]. Energy, 124195(2022).
[32] HIYOSHI N, YOGO K, YASHIMA T. Adsorption characteristics of carbon dioxide on organically functionalized SBA-15[J]. Microporous and Mesoporous Materials, 357(2005).
[33] BALI S, LEISEN J, FOO G S et al. Aminosilanes grafted to basic alumina as CO2 adsorbents—role of grafting conditions on CO2 adsorption properties[J]. ChemSusChem, 3145(2014).
[34] HUANG H Y, YANG R T, CHINN D et al. Amine-grafted MCM-48 and silica xerogel as superior sorbents for acidic gas removal from natural gas.[J]. Industrial & Engineering Chemistry Research, 2427(2003).
Get Citation
Copy Citation Text
Jianwen WEI, Lijuan ZHANG, Linlin GENG, Yu LI, Lei LIAO, Dunqiu WANG.
Category:
Received: Sep. 6, 2024
Accepted: --
Published Online: Sep. 3, 2025
The Author Email: