A comparative photocatalytic study of TiO2 loaded on three natural clays with different morphologies
In this work, a sol-gel method was used to load TiO2 nanoparticles on three clays (kaolinite, halloysite and palygorskite) with different morphologies (plates, tubes, and rods with micro tunnels), and then the photocatalytic performance of obtained clay-TiO2 composites for degradation of methyl oran...
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Veröffentlicht in: | Applied clay science 2019-12, Vol.183, p.105352, Article 105352 |
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Sprache: | eng |
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Zusammenfassung: | In this work, a sol-gel method was used to load TiO2 nanoparticles on three clays (kaolinite, halloysite and palygorskite) with different morphologies (plates, tubes, and rods with micro tunnels), and then the photocatalytic performance of obtained clay-TiO2 composites for degradation of methyl orange was comparatively investigated. The results surprisingly show that the trend of photocatalytic performance of composites is opposite to that of special surface area of corresponding clays. By concentrated analysis of the loading status of TiO2, the lowest photocatalytic efficiency of palygorskite-TiO2 composite is mainly ascribed to (1) the aggregation of TiO2 nanoparticles on Pal surface, not the amount of TiO2 and (2) the relatively weak adsorption of Pal to methyl orange. The additional adsorption of hydroxyl surface of Kaol to methyl orange and little TiO2 in the lumen of Hal tube leads to the better photocatalytic performance of kaolinite-TiO2 composite than halloysite-TiO2 composite. Finally, kaolinite is proved to be an excellent carrier to support nano TiO2 resulting in a good photocatalytic performance and cycle stability, and the study can provide a direct guidance to select appropriate clay-photocatalyst composites for different practical applications.
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•Comparative photocatalytic study of loading nano TiO2 on three clays with distinct morphologies•Opposite trend between photocatalytic performance of clay-TiO2 composites and special surface area of clays•TiO2 aggregation on palygorskite, little TiO2 in halloysite and MO adsorption on kaolinite hydroxyl surface cause the trend |
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ISSN: | 0169-1317 1872-9053 |
DOI: | 10.1016/j.clay.2019.105352 |