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分级大孔/介孔二氧化钛的光催化活性

Photocatalytic activity of a hierarchically macro/mesoporous titania.

作者信息

Wang Xinchen, Yu Jimmy C, Ho Chunman, Hou Yidong, Fu Xianzhi

机构信息

Department of Chemistry and Environmental Science Program, The Chinese University of Hong Kong, Shatin, New Territories, Hong Kong, China.

出版信息

Langmuir. 2005 Mar 15;21(6):2552-9. doi: 10.1021/la047979c.

Abstract

Light-harvesting macroporous channels have been successfully incorporated into a mesoporous TiO(2) framework to increase its photocatalytic activity. This bimodal porous material was characterized by X-ray diffractometry in both low-angle and wide-angle ranges, N(2) adsorption-desorption analysis, scanning and transmission electron microscopy, FT-IR, and diffuse reflectance spectroscopy. Ethylene photodegradation in gas-phase medium was employed as a probe reaction to evaluate the photocatalytic reactivity of the catalysts. The results reveal that sintering temperature significantly affects the structural stability and photocatalytic activity of titania. The catalyst which calcined at 350 degrees C possessed an intact macro/mesoporous structure and showed photocatalytic reactivity about 60% higher than that of commercial P25 titania. When the sample was calcined at 500 degrees C, the macroporous structure was retained but the mesoporous structure was partly destroyed. Further heating at temperatures above 600 degrees C destroyed both macro- and mesoporous structures, accompanied by a loss in photocatalytic activity. The high photocatalytic performance of the intact macro/mesoporous TiO(2) may be explained by the existence of macrochannels that increase photoabsorption efficiency and allow efficient diffusion of gaseous molecules.

摘要

已成功地将光捕获大孔通道并入介孔TiO₂骨架中,以提高其光催化活性。通过低角度和广角范围内的X射线衍射、N₂吸附-脱附分析、扫描和透射电子显微镜、傅里叶变换红外光谱以及漫反射光谱对这种双峰多孔材料进行了表征。采用气相介质中的乙烯光降解作为探针反应来评估催化剂的光催化反应活性。结果表明,烧结温度显著影响二氧化钛的结构稳定性和光催化活性。在350℃下煅烧的催化剂具有完整的大孔/介孔结构,其光催化反应活性比市售的P25二氧化钛高约60%。当样品在500℃下煅烧时,大孔结构得以保留,但介孔结构部分被破坏。在600℃以上的温度下进一步加热会破坏大孔和介孔结构,同时光催化活性也会丧失。完整的大孔/介孔TiO₂的高光催化性能可以通过增加光吸收效率并允许气态分子有效扩散的大孔通道的存在来解释。

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