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Nanocrystallized SrHA/SrHA-SrTiO3/SrTiO3-TiO2 multilayer coatings formed by micro-arc oxidation for photocatalytic application

机译:微弧氧化形成光催化应用纳米晶化SrHA / SrHA-SrTiO3 / SrTiO3-TiO2多层涂层

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Novel photocatalytic coatings containing strontium hydroxyapatite (SrHA), strontium titanate (SrTiO3), and TiO2 were formed by micro-arc oxidation (MAO) in an aqueous electrolyte containing strontium acetate and beta-glycerophosphate disodium at 530 V for 0.1-5 min. The structure evolution of the coatings was investigated as a function of processing time, and the photocatalytic activity of the coatings was evaluated by measuring the decomposition rate of methyl orange under ultraviolet irradiation. During the MAO processing of the coatings, it was observed that some granules appeared in the electrolyte adjacent to the anode and they increased in amount as the processing time was prolonged. The obtained results show that the granules are amorphous and poorly crystallized SrHA with negative charges. The coating prepared for 5 min presents a microporous structure of SrHA/SrHA-SrTiO3/SrTiO3-TiO2 multilayers, in which the SrHA outermost layer and the SrHA-SrTiO3 intermediate layer are nanocrystallized. It is suggested that formation of the granules, electro-migration of the granules onto the pre-formed layer, and crystallization of the adhered granules are possible mechanisms for the formation of a SrHA/SrHA-SrTiO3/SrTiO3-TiO2 multilayer coating. This coating shows much higher photocatalytic decomposition efficiency relative to the MAO-formed TiO2 coating, and is expected to have an important photocatalytic application.
机译:通过微弧氧化(MAO)在含有乙酸锶和β-甘油磷酸二钠的水溶液中于530 V于0.1-5分钟通过微弧氧化(MAO)形成了包含羟基锶磷灰石(SrHA),钛酸锶(SrTiO3)和TiO2的新型光催化涂层。研究了涂层的结构演变与处理时间的关系,并通过测量紫外线照射下甲基橙的分解速率来评估涂层的光催化活性。在涂层的MAO处理期间,观察到一些颗粒出现在与阳极相邻的电解质中,并且随着处理时间的延长它们的数量增加。所得结果表明,该颗粒是无定形的且结晶差的带负电荷的SrHA。制备5分钟的涂层呈现出SrHA / SrHA-SrTiO3 / SrTiO3-TiO2多层微孔结构,其中SrHA最外层和SrHA-SrTiO3中间层被纳米化。提出形成SrHA / SrHA-SrTiO3 / SrTiO3-TiO2多层涂层的可能机制是颗粒的形成,颗粒在迁移到预成型层上的电迁移以及粘附的颗粒的结晶。相对于MAO形成的TiO 2涂层,该涂层显示出更高的光催化分解效率,并且有望具有重要的光催化应用。

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