Wang Shuo, Li Chenyang, Qi Yu, Zhang Jiaming, Wang Ningning, Liu Meng, Zhang Boyang, Cai Xuefen, Zhang Hongbo, Wei Su-Huai, Ma Guijun, Yang Jingxiu, Chen Shanshan, Zhang Fuxiang
School of Materials Science and Engineering, Nankai University, Tianjin, China.
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, China.
Nat Commun. 2025 Apr 22;16(1):3776. doi: 10.1038/s41467-025-59076-8.
Charge separation of particulate photocatalysts has been considered as the rate-determining step in artificial photocatalysis since the finding of Honda-Fujishima effect, whose efficiency is generally much lower than that of natural photosynthesis. To approach its upper limit, it requires the photoexcited electrons and holes be efficiently transferred to the spatially separated redox reaction sites over a single photocatalyst particle. Herein, it is demonstrated the spatial charge separation among facets of BiVO:Mo can be notably promoted by creating an electron transfer layer. It not only favors electrons to transfer to its surface, but also promotes the built-in electric field intensity of the inter-facet junction by over 10 times. Consequently, the charge separation efficiency of the modified BiVO:Mo with loading of CoFeO oxidation cocatalyst exceeds 90% at 420 nm, comparable to that of the natural photosynthesis system, over which notably enhanced photocatalytic activities are achieved. Our findings demonstrate the effectiveness of electron transfer layer in intensifying charge separation of particulate photocatalysts.
自本田-藤岛效应被发现以来,颗粒光催化剂的电荷分离一直被视为人工光催化中的速率决定步骤,其效率通常远低于自然光合作用。为了接近其上限,需要将光激发的电子和空穴有效地转移到单个光催化剂颗粒上空间分离的氧化还原反应位点。在此,证明了通过创建电子转移层可以显著促进BiVO:Mo各晶面之间的空间电荷分离。它不仅有利于电子转移到其表面,还能将晶面间结的内建电场强度提高10倍以上。因此,负载CoFeO氧化助催化剂的改性BiVO:Mo在420nm处的电荷分离效率超过90%,与自然光合作用系统相当,在此基础上实现了显著增强的光催化活性。我们的研究结果证明了电子转移层在强化颗粒光催化剂电荷分离方面的有效性。