Rao Fei, Chen Qi-Wen, Zhu Lujun, Gong Siwen, Wang Siyan, Shi Xianjin, Huang Yu, Jia Yanmin, Lu Hongbing, Huang Xiaoyang, Zhu Gangqiang
School of Physics and Information Technology, Shaanxi Normal University, Xi'an 710062, P. R. China.
State Key Lab of Loess and Quaternary Geology (SKLLQG), Institute of Earth Environment, Chinese Academy of Sciences, Xi'an 710061, P. R. China.
Nano Lett. 2024 Apr 17;24(15):4602-4609. doi: 10.1021/acs.nanolett.4c00731. Epub 2024 Apr 3.
Oxygen vacancy (OV) engineering has been widely applied in different types of metal oxide-based photocatalytic reactions. Our study has shown that the redistributed OVs resulting from voids in CeO rods lead to significant differences in the band structure in space. The flat energy band within the highly crystallized bulk region hinders the recombination of photogenerated carrier pairs during the transfer process. The downward curved energy band in the surface region enhances the activation of the absorbents. Therefore, the localization of the band structure through crystal structure regionalization renders V-CeO capable of achieving efficient utilization of photogenerated carriers. Practically, the V-CeO rod shows a remarkable turnover number of 190.58 μmol g h in CO photoreduction, which is ∼9.4 times higher than that of D-CeO (20.46 μmol g h). The designed modularization structure in our work is expected to provide important inspiration and guidance in coordinating the kinetic behavior of carriers in OV defect-rich photocatalysts.
氧空位(OV)工程已广泛应用于不同类型的基于金属氧化物的光催化反应中。我们的研究表明,CeO棒中的空隙导致的重新分布的氧空位在空间上导致能带结构存在显著差异。高度结晶的块状区域内的平坦能带在光生载流子对的转移过程中阻碍了其复合。表面区域向下弯曲的能带增强了吸附剂的活化。因此,通过晶体结构区域化实现能带结构的局部化,使得V-CeO能够实现光生载流子的高效利用。实际上,V-CeO棒在CO光还原反应中显示出190.58 μmol g⁻¹ h⁻¹的显著周转数,这比D-CeO(20.46 μmol g⁻¹ h⁻¹)高出约9.4倍。我们工作中设计的模块化结构有望为协调富氧空位缺陷光催化剂中载流子的动力学行为提供重要的启发和指导。