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Enhancing visible-light-induced photocatalytic activity of BiOI microspheres for NO removal by synchronous coupling with Bi metal and graphene

机译:通过与Bi金属和石墨烯同步偶合提高BiOI微球可见光诱导的NO去除的光催化活性

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In order to further improve its photocatalytic activity, the BiOI microspheres were activated by a synchronous coupling of Bi metal and graphene under solvothermal conditions. The effects of the synthesis temperature (160-200 degrees C) on crystallinity, morphology, and photocatalytic activity were studied in particular. As expected, the ternary Bi-BiOI/graphene photocatalyst synthesized at 180 degrees C exhibited higher photocatalytic activity for NO oxidation removal under visible light irradiation than individual BiOI, and binary Bi-BiOI and BiOI/graphene composites. The photocatalytic efficiency for the NO removal of the ternary Bi-BiOI/graphene photocatalyst synthesized at 180 degrees C reached 51.8% within 30 min of visible light irradiation. The enhanced photocatalytic activity of the ternary Bi-BiOI/graphene photocatalyst is attributed to (I) the efficient transfer of photo-generated electrons from BiOI and Bi to graphene, leading to the effective separation of the photo-generated electron-hole pairs and (II) the surface plasmon resonance effect of Bi nanoparticles in the composite photocatalyst. Furthermore, the results of the scavenger experiments and DMPO-ESR spin-trapping measurements reveal that center dot O(2)(-)radical species play the most critical role and holes serve as a secondary active species in the oxidative removal process of NO by 180BOI/GR composite under visible light irradiation.
机译:为了进一步提高其光催化活性,BiOI微球在溶剂热条件下通过Bi金属和石墨烯的同步偶联而活化。特别研究了合成温度(160-200摄氏度)对结晶度,形态和光催化活性的影响。如所期望的,在180℃下合成的三元Bi-BiOI /石墨烯光催化剂在可见光照射下显示出比单独的BiOI以及二元Bi-BiOI和BiOI /石墨烯复合物更高的光催化活性,用于NO氧化去除。在可见光照射后30分钟内,在180℃下合成的三元Bi-BiOI /石墨烯光催化剂脱NO的光催化效率达到了51.8%。三元Bi-BiOI /石墨烯光催化剂的光催化活性增强归因于(I)光生电子从BiOI和Bi到石墨烯的有效转移,从而导致光生电子-空穴对的有效分离和( II)Bi纳米粒子在复合光催化剂中的表面等离子体共振效应。此外,清除剂实验和DMPO-ESR自旋俘获测量的结果表明,中心点O(2)(-)自由基物种起着最关键的作用,而空穴在NO的氧化去除过程中充当了次级活性物种。 180BOI / GR复合材料在可见光照射下。

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