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The enhanced water splitting activity of a ZnO-based photoanode by modification with self-doped lanthanum ferrite

机译:增强水的分裂活动ZnO-based光电阳极通过修改self-doped镧铁氧体

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The difficult separation and transfer of photoexcited charge carriers in composite photoelectrodes is a decisive factor limiting the efficiencies of semiconductor-based photoelectrochemical water splitting systems. Herein, to further enhance the photoelectrochemical properties of ZnO-based photoanodes, we constructed composite ZnO nanoarray photoanodes with Fe-self-doped lanthanum ferrite (denoted as La1-xFe1+xO3/ZnO NRs), which had the effect of killing two birds with one stone. This improvement strategy differs from the previously popular multi-step modification process, and integrates the dual benefits of a heterojunction and cocatalyst using the same material, the doped LaFeO3, which bypasses the shortcomings of multi-step charge transfer. Gratifyingly, benefitting from the suitable energy bands and excellent electrocatalytic oxygen evolution activity of La0.9Fe1.1O3, the photoanode exhibits outstanding bulk charge separation and surface charge utilization efficiencies, as well as achieving a photocurrent density that is over three times higher than that of pristine ZnO NRs, with a small onset potential (0.33 V vs. RHE). This electrode modification concept provides guidance for the development of other highly active photoelectrodes.
机译:艰难的分离和转移光激的载流子复合光电极是一个决定性因素限制的效率是从汤姆斯光电化学分解水系统。在此,进一步增强光电化学性质ZnO-based光电阳极,我们构造复合氧化锌纳米阵列光电阳极与Fe-self-doped铁酸镧(表示La1-xFe1 + xO3 /氧化锌关系),杀死两只鸟的效果用一个石头。从以前流行的多步骤修改过程,双重集成异质结和助催化剂使用的好处同样的材料,掺杂LaFeO3,绕过多步骤的缺点转移。合适的能源乐队和优秀的electrocatalytic氧进化的活动La0.9Fe1.1O3,光电阳极展品突出体电荷和表面电荷分离利用效率,以及实现光电流密度超过三倍高于原始氧化锌NRs,小爆发潜力(0.33 V和流值)。电极修饰概念提供指导其他高度活跃的发展光电极。

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