轻松制备 STO/gC3N4 杂化复合材料,在白光下有效降解染料和抗生素

K. Aravinthkumar, Smagul Karazhanov, C. Raja Mohan
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引用次数: 0

摘要

通过沉淀-声化技术制备了一种新型有机-无机光催化剂,类似于氮化石墨碳(g-C3N4 或 CN)与钛酸锶(SrTiO3 或 STO)的混合层结构,具有光催化活性。利用各种理化特性测量了所制备的原始和 STO/CN 杂化复合材料的晶相、形貌、元素组成、光学特性和多孔结构。结果表明,STO 纳米球有效地负载在 g-C3N4 纳米片上,使 STO/CN 混合复合材料具有高比表面积、增强可见光吸收、提高光诱导电荷分离和抑制重组率等特性。此外,在白光照射下,3 wt% g-C3N4 复合 STO(STO/CN-3)催化剂在 100 分钟内表现出比原始 STO 更高的光催化活性,对亚甲蓝(MB)和四环素(TC)的降解效率分别达到 92.66 % 和 93.31 %。STO/gCN 杂化复合材料光催化活性的提高可归因于 STO 和 CN 之间的协同效应,其强大的界面相互作用促进了电荷的有效分离,并抑制了光生电子-空穴对的电荷重组。此外,还提出了降解 MB 和 TC 的可能光催化机制。除了优异的光催化性能,STO/CN-3 纳米复合材料在当前因素下还表现出出色的光稳定性,这表明它们适合实际应用。
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Facile formation of STO/gC3N4 hybrid composite to effectively degrade the dye and antibiotic under white light
A novel organic-inorganic photocatalyst like layer structured graphitic carbon nitride (g-C3N4 or CN) hybrid with strontium titanate (SrTiO3 or STO) was prepared by a precipitation-sonication technique for photocatalytic activity. The crystal phases, morphologies, elemental composition, optical properties, and porous structure of the prepared pristine and STO/CN hybrid composite were measured using various physicochemical characterizations. It is indicated that STO nanospheres were effectively loaded on the g-C3N4 nanosheets, resulting in the STO/CN hybrid composite, high surface area, enhanced visible-light absorption, enhancing photoinduced charge separation and suppressing the recombination rate. Furthermore, the 3 wt% of g-C3N4 composited STO (STO/CN-3) catalyst demonstrated higher photocatalytic activity than pristine STO in 100 min under white light irradiation, reaching the degradation efficiency of 92.66 % and 93.31 % toward methylene blue (MB) and tetracycline (TC), respectively. The improved photocatalytic activity of STO/gCN hybrid composite could be ascribed to the synergistic effect between STO and CN with strong interfacial interaction facilitating efficient charge separation and inhibiting the charge recombination of photogenerated electron-hole pairs. Moreover, a possible photocatalytic mechanism has been proposed for the degradation of MB and TC. Besides, the excellent photocatalytic performance, STO/CN-3 nanocomposite also exhibits outstanding photostability under the current factors, suggesting that they are suitable for practical applications.
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