Controlling the structure of nitrogen-doped zeolite-templated carbon for CO2 capture based on the synthesis conditions

被引:4
作者
Kostkova, Nikola [1 ,2 ]
Vorokhta, Maryna [3 ]
Kormunda, Martin [4 ]
Pilar, Radim [1 ]
Sadovska, Galina [1 ]
Honcova, Pavla [2 ]
Mikyskova, Eliska [1 ]
Moravkova, Jaroslava [1 ]
Sazama, Petr [1 ]
机构
[1] Acad Sci Czech Republ, J Heyrovsky Inst Phys Chem, Dolejskova 2155-3, Prague 18223, Czech Republic
[2] Univ Pardubice, Fac Chem Technol, Doubravice 41, Pardubice 53210, Czech Republic
[3] Acad Sci Czech Republ, Inst Rock Struct & Mech, Dept Geochem, V Holesovickach 94-41, Prague 8, Czech Republic
[4] Univ Jan Evangelista Purkyne, Fac Sci, Pasteurova 3632-15, Usti Nad Labem 40096, Czech Republic
关键词
Zeolite-templated carbon (ZTC); Nitrogen-doped zeolite-templated carbon (N-ZTC); Acetonitrile; Synthesis; MICROPOROUS CARBON; DIOXIDE ADSORPTION; SURFACE-AREA; CARBONIZATION; PERFORMANCE; MEMBRANE; POLYMER; SPHERES; AIR;
D O I
10.1016/j.micromeso.2024.113286
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
The surface chemistry and the textural properties of nitrogen-doped zeolite-templated carbon materials (N-ZTC) are decisive for their functionality in CO2 capture. This study analyses how the synthesis conditions affect the structure, formation of N-containing functional groups, thermal stability and CO2 capture of N-ZTC in comparison with nitrogen-free ZTC. Faujasite as a hard template and chemical vapour depositions (CVD) with propene and acetonitrile were used for the synthesis of ZTC and N-ZTC, respectively. XRD, SEM, N2 and CO2 sorption, XPS and TG/DSC analyses showed that the structural ordering and microporous volume in N-ZTC increases with increasing synthesis temperature. Conversely, at higher temperatures, the content of basic pyridinic groups in N-ZTC decreases in favour of stable graphitic nitrogen. The Lewis acid-base interaction of CO2 with the pyridinic groups provides the highest adsorption heats, the highest affinity for CO2 compared to N2 and enhances CO2/N2 selectivity (CO2/N2 selectivities of 127, 95, 89, and 66 for N-ZTC750 degrees C, N-ZTC800 degrees C, N-ZTC850 degrees C and ZTC, respectively). The maximum adsorption capacity was achieved for N-ZTC800 degrees C still yielding a high content of basic groups and a larger micropore volume compared to N-ZTC750 degrees C. The decisive factor for the selectivity is thus the presence of basic centers attainable in N-ZTC at a lower synthesis temperature. The maximum adsorption capacity is associated with a large microporous volume and basic centers in N-ZTC synthesized at medium temperatures. The energy of CO2 adsorption by Lewis acid-base interactions and welldeveloped micropores are decisive for high selectivity and large adsorption capacity for efficient CO2 capture using N-ZTC materials.
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页数:12
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