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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Remarkable improvement of visible light photocatalysis with PANI modified core-shell mesoporous TiO2 microspheres
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Remarkable improvement of visible light photocatalysis with PANI modified core-shell mesoporous TiO2 microspheres

机译:PANI修饰的核-壳介孔TiO2微球显着改善可见光催化作用

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摘要

PANI modified core-shell mesoporous TiO2 (PANI/M-TiO2) with efficient photocatalytic capability under visible light irradiation was fabricated by hydrothermal method and chemisorption approach. The nitrogen adsorption-desorption characterization indicated that the specific surface area of mesoporous M-TiO2 was 2.8 times as great as that of P25, which resulted in the increased uptake of PANI molecule on the surface of M-TiO2. Environmental scanning electron microscopy and transmission electron microscopy images demonstrated that the PANI/M-TiO2 possessed a unique core-shell structure, which allowed multiple reflection or scattering of light in the photocatalyst and led to the increase of optical path length subsequently. Both the increased uptake of PANI molecules and optical path length in photocatalyst contributed to enhance the visible light absorption. The UV-vis diffuse reflectance spectra confirmed that the optical absorption for PANI/M-TiO2 was more intensive than that for PANI modified TiO2 nanoparticle (PANI/NP-TiO2) in the visible light region. The intensive visible light absorption and effective charge separation owing to the heterojunction built between TiO2 and PANI lead to remarkable improvement of visible light photocatalysis. The pseudo-first-order kinetic constant of photocatalytic degradation of rhodamine B and 4-chlorophenol under visible light irradiation with 6% PANI/M-TiO2 was 5.04 and 2.03 times as great as that with PANI/NP-TiO2 respectively, showing the advantage of the unique core-shell mesoporous structure in the PANI/M-TiO2 for efficient photocatalysis.
机译:采用水热法和化学吸附法制备了在可见光下具有高效光催化性能的PANI改性核-壳介孔TiO2(PANI / M-TiO2)。氮吸附-解吸特性表明,介孔M-TiO2的比表面积是P25的2.8倍,这导致PANI分子在M-TiO2表面的吸收增加。环境扫描电子显微镜和透射电子显微镜图像表明,PANI / M-TiO2具有独特的核-壳结构,该结构允许光在光催化剂中多次反射或散射,从而导致光程长度的增加。 PANI分子的吸收增加和光催化剂中的光程长度都有助于增强可见光吸收。紫外可见漫反射光谱证实,在可见光区域中,PANI / M-TiO2的光吸收比PANI改性的TiO2纳米粒子(PANI / NP-TiO2)的光吸收更强。由于TiO2和PANI之间建立了异质结,导致了强烈的可见光吸收和有效的电荷分离,从而显着改善了可见光的光催化性能。 6%PANI / M-TiO2可见光照射下若丹明B和4-氯苯酚光催化降解的拟一级动力学常数分别是PANI / NP-TiO2的5.04和2.03倍,显示出优势PANI / M-TiO2中独特的核-壳介孔结构的研究,以进行有效的光催化。

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