| Literature DB >> 20652150 |
Weijie Dai1, Mingbo Zheng, Yu Zhao, Shutian Liao, Guangbin Ji, Jieming Cao.
Abstract
Three-dimensional cubic ordered mesoporous carbons with tunable pore sizes have been synthesized by using cubic Ia3d mesoporous KIT-6 silica as the hard template and boric acid as the pore expanding agent. The prepared ordered mesoporous carbons were characterized by powder X-ray diffraction, scanning electron microscopy, transmission electron microscopy, and nitrogen adsorption-desorption analysis. The results show that the pore sizes of the prepared ordered mesoporous carbons with three-dimensional cubic structure can be regulated in the range of 3.9-9.4 nm. A simplified model was proposed to analyze the tailored pore sizes of the prepared ordered mesoporous carbons on the basis of the structural parameters of the silica template.Entities:
Keywords: KIT-6; Mesoporous carbon; Mesoporous silica; Pore size control; Template synthesis
Year: 2009 PMID: 20652150 PMCID: PMC2894178 DOI: 10.1007/s11671-009-9450-3
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1XRD patterns of KIT-6 silica and the OMCs
Figure 2SEM images of a KIT-6 and b OMC-4. TEM images of c KIT-6 and d OMC-4
Figure 3a N2 adsorption–desorption isotherms for KIT-6 silica and the OMCs. The sorption isotherms for the OMC-0, OMC-1, OMC-4, OMC-8, and OMC-12 have been shifted vertically by 50, 550, 750, 1,200, and 1,450 cm3/g, respectively. b The corresponding pore size distributions for KIT-6 silica and the OMCs calculated from adsorption branches using the BJH algorithm
Structural properties of KIT-6 silica and the OMCs
| Samples | ||||||
|---|---|---|---|---|---|---|
| KIT-6 | 22.4 | 7.5 | 790.2 | 105.4 | 1.11 | – |
| OMC-0 | 19.9 | 3.9 | 1,188.3 | 217.9 | 1.33 | 0.10 |
| OMC-1 | 19.4 | 4.9 | 692.7 | 200.1 | 0.98 | 0.09 |
| OMC-4 | 19.4 | 5.7 | 955.8 | 435.6 | 1.32 | 0.21 |
| OMC-8 | 20.1 | 6.6 | 779.2 | 404.2 | 1.27 | 0.19 |
| OMC-12 | 20.1 | 9.4 | 1,017.9 | 550.5 | 1.68 | 0.27 |
XRD unit-cell parameter a0 is equal to 61/2d211; d0 is the pore diameter calculated from the adsorption branch of the isotherm using the BJH method; SBET is the specific surface area using the BET method; Smicro is the micropore surface area; Vtot is the total pore volume at relative pressure of 0.99; Vmicro is the micropore volume
Figure 4Schematic drawing of the simplified pore expansion model for the synthesis of the OMC with tailored pore size. 1 Co-infiltration of boric acid and sucrose. 2 Carbonization and removal of the silica template. The pore interconnectivity existed in the silica and the carbon replica is not shown