APTES-Based Silica Nanoparticles as a Potential Modifier for the Selective Sequestration of CO2 Gas Molecules

被引:24
作者
Cueto-Diaz, Eduardo J. [1 ]
Castro-Muniz, Alberto [2 ]
Suarez-Garcia, Fabian [2 ]
Galvez-Martinez, Santos [1 ]
Torquemada-Vico, Ma Carmen [3 ]
Valles-Gonzalez, Ma Pilar [4 ]
Mateo-Marti, Eva [1 ]
机构
[1] CSIC, INTA, Ctr Astrobiol, Km 4, Madrid 28850, Spain
[2] CSIC, INCAR, Inst Ciencia & Tecnol Carbono, C Francisco Pintado Fe 26, Oviedo 33011, Spain
[3] Inst Nacl Tecn Aeroespacial, Dept Opt Espacial, Ctra Ajalvir,Km 4, Madrid 28850, Spain
[4] Inst Nacl Tecn Aeroespacial, Dept Mat & Estructuras, Ctra Ajalvir,Km 4, Madrid 28850, Spain
关键词
functional silica nanoparticles; CO2; adsorption; CO2/N-2; selectivity; hybrid nanomaterials; surface spectroscopies; METAL-ORGANIC FRAMEWORKS; N-DOPED CARBON; POROUS CARBONS; PORE-SIZE; ADSORPTION; CAPTURE; DIOXIDE; PERFORMANCE; ZEOLITES; STORAGE;
D O I
10.3390/nano11112893
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this work, we have described the characterization of hybrid silica nanoparticles of 50 nm size, showing outstanding size homogeneity, a large surface area, and remarkable CO2 sorption/desorption capabilities. A wide battery of techniques was conducted ranging from spectroscopies such as: UV-Vis and IR, to microscopies (SEM, AFM) and CO2 sorption/desorption isotherms, thus with the purpose of the full characterization of the material. The bare SiO2 (50 nm) nanoparticles modified with 3-aminopropyl (triethoxysilane), APTES@SiO2 (50 nm), show a remarkable CO2 sequestration enhancement compared to the pristine material (0.57 vs. 0.80 mmol/g respectively at 50 & DEG;C). Furthermore, when comparing them to their 200 nm size counterparts (SiO2 (200 nm) and APTES@SiO2 (200 nm)), there is a marked CO2 capture increment as a consequence of their significantly larger micropore volume (0.25 cm(3)/g). Additionally, ideal absorbed solution theory (IAST) was conducted to determine the CO2/N-2 selectivity at 25 and 50 & DEG;C of the four materials of study, which turned out to be > 70, being in the range of performance of the most efficient microporous materials reported to date, even surpassing those based on silica.
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页数:19
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