期刊文献+

不同制备方法对TiO_2-SiO_2复合气凝胶结构的影响 被引量:3

The effection of different method on the characterize of SiO_2-TiO_2 composite aerogels
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摘要 分别以物理法和化学法制备TiO2-SiO2复合气凝胶。采用XRD、SEM、TEM等对两种方法制得的气凝胶进行结构分析,并结合DSC-TG对样品进行热稳定性分析。结果表明:虽然两种方法制备的气凝胶微观上都是以TiO2晶体分散在SiO2网络结构中,但化学法制得的样品晶体结构单一,而物理法制得的样品以锐钛矿和金红石两种结构存在。化学法制备的TiO2颗粒小且分散更均匀,化学法获得的气凝胶高温热稳定性也更好。 SiO2-TiO2 compound aerogels was prepared through physical and chemical process, respectively. The structure of the obtained aerogel was characterized by XRD, SEM and TEM, and the therrnostability of which was analysed with DSC-TG. The results indicated that, the microstructure of both kinds of compound aerogel turned to be TiO2 crystal dispersed in the network of SiO2 aerogel. But the one got by chemical method adopted the sole anatase TiO2 crystal structure, and the other got by physical method adopted anatase and rutile TiO2 crystal structure. The dimensions of chemical prepared TiO2 particles were smaller and more homodispersed than physical prepared, and the HT-thermostability of chemical prepared aerogel was better.
出处 《化工新型材料》 CAS CSCD 北大核心 2008年第8期56-57,69,共3页 New Chemical Materials
基金 江苏省自然科学基金项目(BK2007586) 江苏省博士后科研资助计划项目(0701012B)
关键词 TiO2-SiO2复合气凝胶 结构 热稳定性 SiO2-TiO2 composite aerogel, structure, thermostability
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参考文献7

  • 1井强山,刘朋.纳米孔超级绝热材料硅气凝胶制备与改性[J].许昌学院学报,2004,23(5):33-37. 被引量:13
  • 2邓忠生,张哲,翁志农,王珏,周斌,沈军,陈玲燕.SiO_2-TiO_2两元气凝胶的制备及其结构表征[J].功能材料,2001,32(2):200-202. 被引量:14
  • 3姚超,丁永红,林西平,杨绪杰,陆路德,汪信.纳米TiO_2有机表面改性的研究[J].无机化学学报,2005,21(5):638-642. 被引量:50
  • 4Jose Aguado, Rafael van Grieken, Maria-Jose Lopez-Munoz, ed al. A comprehensive study of the synthesis,characterization and activity of TiO2 and mixed TiO2 SiO2 photocatalysts[J]. Applied Catalysis, 2006,3 (12) : 202-212.
  • 5Amlouk A,L EI Mir,S Kraiem,S Alaya. Elaboration and characterization of TiO2 nanoparticles incorporated in SiO2 host matrix[J]. Journal of Physics and Chemistry of Solids,2006,1464- 1468.
  • 6Young-geun Kwon, Se-young Choi, Eul-son Kang et al. Ambient-dried silica aerogel doped with TiO2 powder for thermal insulation[J]. Journal of Materials Science, 2000, (35): 6075- 6079.
  • 7Cao Shengli , King Lun Yeung, Po - Lock Yue. Preparation of freestanding and crack-free titania-silica aerogels and their performance for gas phase, photocatalytic oxidation of VOCs[J]. Applied Catalysis B: Environmental, 2006, 68 : 99-108.

二级参考文献28

  • 1姚超,杨光,林西平,汪信.纳米技术与纳米材料(Ⅹ)——纳米二氧化钛的表面处理[J].日用化学工业,2004,34(4):252-255. 被引量:8
  • 2Kwon T.G.,Choi S.Y.,Kang E.S..Ambient-dried silica aerogel doped with TiO2 powder for thermal insulation[J].Journal of Materials Science,2000,35:6 075-6 079.
  • 3Hrubesh L.W..Aerogels Applications[J].Journal of Non-Crystalline Solids,1998,225:335-342.
  • 4Wagh P.B.,Ingale S.V..Comparison of some physico-chemical properties of hydrophilic and hydrophobic silica aerogels[J].Ceramics International,2002,28:43-50.
  • 5Rao A.V.,Manish M.K..Effect of glycerol additive on physical properties of hydrophobic silica aerogels[J].Materials Chemistry and Physics,2002,77:819-825.
  • 6Rao A.V.,Manish M.K..Hydrophobic properties of TMOS/TMES-based silica aerogels[J].Materials Research Bulletin,2002,37:1 667-1 677.
  • 7Yokogawa H.,Yokoyama M..Hydrophobic silica aerogels[J].Journal of Non-Crystalline Solids,1995,186:23-29.
  • 8Lee D,Stevens P.C.,Zeng S.Q..et al.Thermal characterization of carbon-opacified silica aerogels[J].Journal of Non-Crystalline Solids,1995,185:285-290.
  • 9Parmenter K.E.,Milstein F..Mechanical properties of silica aerogels[J].Journal of Non-Crystalline Solids,1998,223:179-189.
  • 10Schmidt M.,Schwertfeger.F..Applications for Silica Aerogel Products[J].Journal of Non-Crystalline Solids,1998,225:364-368.

共引文献72

同被引文献44

  • 1孙夺,王晓东,段远源,赵俊杰.气凝胶-遮光剂复合材料中遮光剂的辐射特性[J].应用基础与工程科学学报,2012,20(S1):181-189. 被引量:10
  • 2王珏,周斌,沈军,孟凡明,陈茂斌.轻质高效保温材料掺杂硅气凝胶[J].功能材料,1996,27(2):167-170. 被引量:11
  • 3Ping E W,Wallace R,Pierson J,et al.Highly dispersed palladium nanoparticles on ultra-porous silica mesocellular foam for the catalytic decarboxylation of stearic acid.Microporous and Mesoporous Materials,2010,132(1/2):174-180.
  • 4Han Y,Lee S S,Ying J Y.Spherical siliceous mesocellular foam particles for high-speed size exclusion chromatography.Chem.Mater.,2007,19(9):2292-2298.
  • 5Zhang F Z,Takeaki K,Masayoshi F J,et al.Gelcasting fabrication of porous ceramics using a continuous process.Journal of the European Ceramic Society,2006,26(4/5):67-71.
  • 6Jones S M.Aerogel:space exploration applications.J.Sol-Gel Sci.Technol.,2006,40(2/3):351-357.
  • 7Schmidt-Winkel P,Zhao D Y,Stucky G D,et al.Mesocellular siliceous foams with uniformly sized cells and windows.J.Am.Chem.Soc.,1999,121(1):254-255.
  • 8Schmidt-Winkel P,Lukens W W,Yang P D,et al.Microemulsion templating of siliceous mesostructured cellular foams with well-defined ultralarge mesopores.Chem.Mater.,2000,12(3):686-696.
  • 9Aravind P R,Mukundan P,Krishna P,et al.Mesoporous silica- alumina aerogels with high thermal pore stability through hybrid Sol-Gel route followed by subcritical drying.Microporous and Mesoporous Materials,2006,96(1/2/3):14-20.
  • 10Yang J,Zhang J,Zhu L W,et al.Synthesis of nano titania particles embedded in mesoporous SBA-15:characterization and photocatalytic activity.Journal of Hazardous Materials,2006,137(2):952-958.

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