Citation: Minglu Sun, Wendong Zhang, Yanjuan Sun, Yuxin Zhang, Fan Dong. Synergistic integration of metallic Bi and defects on BiOI:Enhanced photocatalytic NO removal and conversion pathway[J]. Chinese Journal of Catalysis, 2019, 40(6): 826-836. doi: 10.1016/S1872-2067(18)63195-X
BiOI上Bi单质和缺陷的协同作用:增强的光催化NO去除和转化途径
XRD、XPS、SEM和TEM表征表明Bi单质沉积在BiOI表面,整个体系由纳米片自组装为海绵状立体结构.BET比表面积增大,结合SEM推测是由纳米片的分层堆叠造成的.UV-DRS表明带隙宽度仅有1.8eV的BiOI具有可见光响应.EPR和态密度(DOS)结合可以证明氧缺陷及其激发多个中间能级的存在.中间能级可以促进电子在可见光下从价带到导带的转移.PL表明体系中Bi金属的SPR效应所激发的电磁场可以促进光生载流子的分离.通过DFT理论计算催化剂的电子结构,差分、电子局域函数(ELF)及电势表明Bi单质和Bi-O层间强的共价作用形成一个通道,使得热电子从较高电势的Bi单质向相对低电势的BiOI传递,Bi单质PDOS的计算证明价带变宽归因于Bi元素轨道的贡献,Bi的SPR效应激发BiOI的电子到更高能级并聚集在价带顶,这有利于光生载流子的分离.ESR表明提升的电荷分离和迁移率促进了羟基和超氧自由基的产生.结合表征及理论计算结果,活性的增强可归因于金属Bi和氧空位的协同效应.氧缺陷激发的中间能级促进了电荷转移,Bi金属的SPR效应使可见光吸收效率提高并且促进了光生载流子分离,这些是增强光催化性能的关键因素.此外,采用原位红外光谱法(FT-IR)对Bi/BiOI-2的NO吸附和反应过程进行了动态监测.根据中间产物分析和DFT计算结果,提出了金属Bi和氧空位协同作用提高Bi/BiOI光催化性能的机理.本研究为高性能光催化剂的设计和理解空气净化光催化反应机理提供了新的思路.
English
Synergistic integration of metallic Bi and defects on BiOI:Enhanced photocatalytic NO removal and conversion pathway
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Key words:
- Surface plasmon resonance
- / Bi metal
- / BiOI
- / Photocatalysis
- / Oxygen vacancy
- / Reaction mechanism
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