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TiO2 modified orthocortical and paracortical cells having enhanced photocatalytic degradation and photoreduction properties

机译:TiO2改性的视野和垂直细胞具有增强的光催化降解和光电曝光性能

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In this study, cortical cells resultant from wool fibers were loaded with TiO2 nanoparticles in a hydrothermal process and were then engineered as organic-nonorganic hybrid composite photocatalysts for both photodegradation of organic dyes and photoreduction of heavy metal ions. The microstructure and photocatalytic properties of TiO2 modified cortical cells (i.e. both orthocortical and paracortical cells) were systematically characterized using a series of analytical techniques including FESEM, TEM, element analysis, Mott-Schottky curve, BET specific surface area, Zeta potentials, as well as XRD, FTIR, XPS, DRS, PL, UPS, EDS and ESR spectra. Their photocatalytic performance and trapping experiments of the TiO2 modified cortical cells were measured in the photodegradation of methylene blue (MB) dye and Congo Red (CR) dye as well as the photoreduction of Cr(VI) ions under visible light irradiation. It was found that anatase TiO2 nanoparticles were chemically grafted on the surface of the two cortical cells via O-Ti4+/O-Ti3+ bonds, and that TiO2 nanoparticles were formed inside the orthocortical cells in the hydrothermal process. The TiO2 modified orthocortical and paracortical cells possessed much higher photocatalytic efficiency than the commercially available TiO2 nanoparticle powder, Degussa P25, in the photodegradation of cationic MB dye and photoreduction of Cr(VI) ions, while their photocatalytic efficiency in the photodegradation of anionic CR dye is smaller because of their greater negative Zeta potentials and photogenerated holes as the main reactive radical species. In comparison with the TiO2 modified paracortical cells, the higher photocatalytic efficiency of the TiO2 modified orthocortical cells was demonstrated in the photodegradation of MB dye solution and this might be due to both the S-doped TiO2 nanoparticles infiltrated into the naturally hydrophilic orthocortical cells and the primary reactive radical species of photogenerated holes being trapped in the cells.
机译:在本研究中,将羊毛纤维制成的皮质细胞在水热过程中负载TiO2纳米颗粒,然后将其设计为有机-非有机混合复合光催化剂,用于有机染料的光降解和重金属离子的光还原。采用FESEM、TEM、元素分析、莫特-肖特基曲线、BET比表面积、Zeta电位、XRD、FTIR、XPS、DRS、PL、UPS、EDS和ESR光谱等一系列分析技术,系统表征了TiO2修饰的皮质细胞(即正皮质细胞和副皮质细胞)的微观结构和光催化性能。通过亚甲基蓝(MB)染料和刚果红(CR)染料的光降解以及可见光照射下CR(VI)离子的光还原,测定了TiO2修饰的皮质细胞的光催化性能和捕获实验。发现锐钛矿型TiO2纳米颗粒通过O-Ti4+/O-Ti3+键化学接枝到两个皮质细胞的表面,并且在水热过程中在正皮质细胞内形成TiO2纳米颗粒。在阳离子MB染料的光降解和Cr(VI)离子的光还原方面,TiO2修饰的正皮质和副皮质细胞比市售TiO2纳米颗粒粉末Degussa P25具有更高的光催化效率,但由于它们的负Zeta电位较大,光生空穴是主要的活性自由基,因此它们在阴离子CR染料光降解中的光催化效率较小。与TiO2修饰的副皮质细胞相比,在MB染料溶液的光降解中,TiO2修饰的正皮质细胞表现出更高的光催化效率,这可能是由于S掺杂的TiO2纳米颗粒渗透到自然亲水的正皮质细胞中,以及光生空穴的主要活性自由基物种被困在细胞中。

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