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Novel in situ N-doped (BiO) 2CO 3 hierarchical microspheres self-assembled by nanosheets as efficient and durable visible light driven photocatalyst

机译:由纳米片自行组装的新型原位N掺杂(BiO)2CO 3分层微球,作为高效,耐用的可见光驱动光催化剂

摘要

Novel N-doped (BiO) 2CO 3 hierarchical microspheres (N-BOC) were fabricated by a facile one-pot template free method on the basis of hydrothermal treatment of bismuth citrate and urea in water for the first time. The N-BOC sample was characterized by X-ray diffraction, X-ray photoelectron spectroscopy, UV-vis diffuse reflectance spectroscopy, scanning electron microscopy, transmission electron microscopy, N 2 adsorption- desorption isotherms, and Fourier transform-infrared spectroscopy. The N-BOC was constructed by the self-assembly of single-crystalline nanosheets. The aggregation of nanosheets led to the formation of hierarchical framework with mesopores, which is favorable for efficient transport of reaction molecules and harvesting of photoenergy. Due to the in situ doped nitrogen substituting for oxygen in the lattice of (BiO) 2CO 3, the band gap of N-BOC was reduced from 3.4 to 2.5 eV, making N-BOC visible light active. The N-BOC exhibited not only excellent visible light photocatalytic activity, but also high photochemical stability and durability during repeated and long-term photocatalytic removal of NO in air due to the special hierarchical structure. This work demonstrates that the facile fabrication method for N-BOC combined with the associated outstanding visible light photocatalytic performance could provide new insights into the morphology-controlled fabrication of nanostructured photocatalytic materials for environmental pollution control.
机译:首次在柠檬酸铋和尿素水热处理的基础上,采用简便的单锅无模板法制备了新型的N掺杂(BiO)2CO 3分级微球。 N-BOC样品通过X射线衍射,X射线光电子能谱,UV-vis漫反射光谱,扫描电子显微镜,透射电子显微镜,N 2吸附-解吸等温线和傅立叶变换红外光谱进行了表征。通过单晶纳米片的自组装构建N-BOC。纳米片的聚集导致具有中孔的分层框架的形成,这有利于反应分子的有效运输和光能的收集。由于在(BiO)2CO 3的晶格中用原位掺杂的氮替代了氧,N-BOC的带隙从3.4 eV降低到2.5 eV,使N-BOC可见光具有活性。 N-BOC不仅具有出色的可见光光催化活性,而且由于特殊的分层结构,在重复和长期光催化去除空气中的NO的过程中还具有很高的光化学稳定性和耐久性。这项工作表明,简便的N-BOC制备方法与相关的出色可见光光催化性能相结合,可以为控制环境污染的纳米结构光催化材料的形态控制制备提供新的见解。

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