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首页> 外文期刊>Applied Surface Science >In situ synthesis of Pt and N co-doped hollow hierarchical BiOCl microsphere as an efficient photocatalyst for organic pollutant degradation and photocatalytic CO_2 reduction
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In situ synthesis of Pt and N co-doped hollow hierarchical BiOCl microsphere as an efficient photocatalyst for organic pollutant degradation and photocatalytic CO_2 reduction

机译:Pt和N共掺杂空心空心BiOCl微球的原位合成作为有机污染物降解和光催化CO_2还原的有效光催化剂

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摘要

Development of efficient photocatalyst via a simple method is critical for environmental remediation and energy conversion. Herein, a highly efficient N and Pt co-doped hollow hierarchical BiOCl microsphere (HHBs) photocatalyst was prepared by an in situ hydrothermal method. HHBs was assembled by numerous interleaving nanosheets petals with small thickness. The synthesized photocatalyst exhibited excellent photocatalytic performance for photoreduction of CO2 into hydrocarbons and photodegradation of organic contaminant (ciprofloxacin (CIP) and rhodamine B (RhB)), which can be attributed to the scattering effect and surface reflecting caused by the hierarchical architecture, the N doping that narrows the band gap, and the Schottky barrier due to the existence of Pt that improves the charge transfer and carrier separation. The Pt-1/N-0.25-HHBs with optimal content of Pt and N exhibited the fastest degradation rate for CIP (0.011 min(-1)) and RhB (0.144 min(-1)). Besides, the yields of methanol and ethanol over Pt-1/N-0.25-HHBs were 328.7 and 113.2 mu mol/g(cat) in 8 h of simulated sunlight irradiation, respectively, which were 3.4 and 5.7 times higher than that over single HHBs. Moreover, possible mechanism of excellent photocatalytic performance of Pt-1/N-0.25-HHBs was also investigated. This work represented a promising candidate photocatalyst for environmental remediation and energy conversion using cost efficient materials.
机译:通过简单的方法开发高效的光催化剂对于环境修复和能量转换至关重要。在此,通过原位水热法制备了高效的N和Pt共掺杂的空心分级BiOCl微球(HHBs)光催化剂。 HHBs由许多厚度小的交错纳米片花瓣组装而成。合成的光催化剂在将CO2光还原为碳氢化合物和对有机污染物(环丙沙星(CIP)和若丹明B(RhB))进行光降解方面表现出优异的光催化性能,这归因于分层结构,N引起的散射效应和表面反射。掺杂会缩小带隙,肖特基势垒则是由于Pt的存在而改善了电荷转移和载流子分离。具有最佳Pt和N含量的Pt-1 / N-0.25-HHBs对CIP(0.011 min(-1))和RhB(0.144 min(-1))的降解速度最快。此外,Pt-1 / N-0.25-HHBs在模拟阳光照射下8 h的甲醇和乙醇的产率分别为328.7和113.2 mu mol / g(cat),分别比单次处理高3.4和5.7倍。 HHBs。此外,还研究了Pt-1 / N-0.25-HHBs优异的光催化性能的可能机理。这项工作代表了使用有成本效益的材料进行环境修复和能量转化的有前途的候选光催化剂。

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