Synthesis and characterization of SiO2–CrO3, SiO2–MoO3, and SiO2–WO3 mixed oxides produced using the non-hydrolytic sol–gel process

被引:0
作者
Arthur A. Bernardes
Claudio Radtke
Maria do Carmo M. Alves
Ione M. Baibich
Márcia Lucchese
João Henrique Z. dos Santos
机构
[1] Universidade Federal do Rio Grande do Sul,Instituto de Química
[2] Universidade Federal do Pampa,Curso de Licenciatura em Física
来源
Journal of Sol-Gel Science and Technology | 2014年 / 69卷
关键词
Non-hydrolytic sol–gel; Silica; Metal oxides; Supports;
D O I
暂无
中图分类号
学科分类号
摘要
Silica-based mixed oxide xerogels, namely SiO2–CrO3, SiO2–MoO3, and SiO2–WO3, were prepared using the non-hydrolytic sol–gel process. The materials were synthesized using metal chloride:tetraethoxysilane (TEOS) molar ratios of 0.1:2; 0.2:2 and 0.4:2 for each metal chloride and 1:2 SiCl4:TEOS molar ratio. All of the xerogels containing Cr, Mo or W had considerably greater surface areas than that of SiO2. The small angle X-ray scattering experiments suggest that the surface roughness of the aggregates in SiO2–CrO3 is less than that of SiO2–MoO3 and SiO2–WO3. The morphological characteristics of the silica-based mixed oxide xerogels were not affected by the nature and amount of metal chloride employed in the synthesis. An irregular morphology was observed for SiO2–CrO3, SiO2–MoO3 and SiO2–WO3, but a lamellar structure was observed for SiO2. X-ray photoelectron spectroscopy analysis suggests that tungsten species were preferentially distributed on the outmost part of the grain. The resulting particle diameter was shown to be lower for the mixed oxides compared to that of bare silica. Furthermore, the presence of metals (Cr, Mo and W) on silica caused a decrease in the size of the particles as the atomic radii of these metals increased. According to the Fourier transform infrared spectroscopy and Raman, Cr, Mo and W were incorporated within the silica framework.
引用
收藏
页码:72 / 84
页数:12
相关论文
共 162 条
[1]  
Wachs IE(2010)Monitoring surface metal oxide catalytic active sites with Raman spectroscopy Chem Soc Rev 39 5002-5017
[2]  
Roberts CA(2010)Silicon-assisted direct covalent grafting on metal oxide surfaces: synthesis and characterization of carboxylate N, N′-ligands on TiO2 Eur J Inorg Chem 11 1633-1641
[3]  
Arzoumanian H(2009)Sol–gel synthesis and characterization of Co–Mo/Silica catalysts for single-walled carbon nanotube production Chem Mater 21 2238-2246
[4]  
Castellanos NJ(2012)An investigation on the assembling of WO J Sol–Gel Sci Technol 64 427-435
[5]  
Martinez FO(2005) particles on the matrix of silica solution Catal Today 100 79-94
[6]  
Páez-Mozo EA(1991)Recent conceptual advances in the catalysis science of mixed metal oxide catalytic materials Catal Lett 11 227-240
[7]  
Ziarelli F(2003)Remarkable spreading behavior of molybdena on silica catalysts. An in situ EXAFS-Raman study Appl Catal A 255 121-131
[8]  
Irurzun VM(2004)Application of a WO J Appl Polym Sci 91 2923-2927
[9]  
Tan Y(2000)/SiO J Catal 191 373-383
[10]  
Resasco DE(2011) catalyst in an industrial environment: part I Appl Catal A 399 28-34