Jiao Zhengbo, Zheng Jingjing, Feng Chenchen, Wang Zeli, Wang Xuesen, Lu Gongxuan, Bi Yingpu
State Key Laboratory for Oxo Synthesis and Selective Oxidation, National Engineering Research Center for Fine Petrochemical Intermediates, Lanzhou Institute of Chemical Physics, CAS, Lanzhou, 730000, China.
Department of Physics, National University of Singapore, Singapore, 117542, Singapore.
ChemSusChem. 2016 Oct 6;9(19):2824-2831. doi: 10.1002/cssc.201600761. Epub 2016 Aug 30.
BiVO has been identified as one of the excellent visible light responsive photoanodes for use in photoelectrochemical (PEC) water splitting. However, pristine BiVO usually exhibits relative low photocatalytic properties owing to insufficient charge separation and transport characteristics. Although the marginal n-type doping of higher valence ions can obviously raise the photocurrent value, it by no means improves the PEC stability. In this work, we successfully enhanced the PEC stability of BiVO by doping Fe ions in substitution of Bi. Density functional theory calculations have illustrated that Fe-doping would result in an impurity band in the forbidden gap, and thus narrow its energy gap. More importantly, Fe-doping can synergize with other means to further improve the PEC activities of BiVO . Therefore, we fabricated a nanoporous Fe/W co-doped BiVO photoelectrode, and then loaded the metal-organic framework (MOF) MIL-100(Fe) as cocatalyst to further promote the separation of charge carriers. To the best of our knowledge, MOFs have not yet been utilized as a cocatalyst to facilitate the charge separation, which could increase the photocurrent density of Fe/W co-doped BiVO .
BiVO₄已被确定为用于光电化学(PEC)水分解的优异可见光响应光阳极之一。然而,由于电荷分离和传输特性不足,原始的BiVO₄通常表现出相对较低的光催化性能。尽管高价离子的边际n型掺杂可以明显提高光电流值,但它绝不能提高PEC稳定性。在这项工作中,我们通过掺杂Fe离子取代Bi成功提高了BiVO₄的PEC稳定性。密度泛函理论计算表明,Fe掺杂会在禁带中产生杂质带,从而缩小其能隙。更重要的是,Fe掺杂可以与其他方法协同作用,进一步提高BiVO₄的PEC活性。因此,我们制备了一种纳米多孔Fe/W共掺杂BiVO₄光电极,然后负载金属有机框架(MOF)MIL-100(Fe)作为助催化剂,以进一步促进电荷载流子的分离。据我们所知,MOF尚未被用作促进电荷分离的助催化剂,这可以增加Fe/W共掺杂BiVO₄的光电流密度。