Laboratory of Green and Precise Synthetic Chemistry and Applications, Ministry of Education, School of Physics and Electronic Information, Huaibei Normal University, Huaibei, Anhui, 235000, P. R. China.
Turin Polytechnic University in Tashkent, Kichik khalqa yoli 17, Tashkent, 100095, Uzbekistan.
Adv Mater. 2023 Jun;35(26):e2300643. doi: 10.1002/adma.202300643. Epub 2023 May 11.
Photocatalytic CO conversion for hydrocarbon fuel production has been known as one of the most promising strategies for achieving carbon neutrality. Yet, its conversion efficiency remains unsatisfactory mainly due to its severe charge-transfer resistance and slow charge kinetics. Herein, a tunable interfacial charge transfer on an oxygen-vacancies-modified bismuth molybdate nanoflower assembled by 2D nanosheets (BMOVs) and 2D bismuthene composite (Bi/BMOVs) is demonstrated for photocatalytic CO conversion. Specifically, the meticulous design of the Ohmic contact formed between BMOVs and bismuthene can allow the modulation of the interfacial charge-transfer resistance. According to density functional theory (DFT) simulations, it is ascertained that such exceptional charge kinetics is attributed to the tunable built-in electric field (IEF) of the Ohmic contact. As such, the photocatalytic CO reduction performance of the optimized Bi/BMOVs (CO and CH productions rate of 169.93 and 4.65 µmol g h , respectively) is ca. 10 times higher than that of the pristine BMO (CO and CH production rates of 16.06 and 0.51 µmol g h , respectively). The tunable interfacial resistance of the Ohmic contact reported in this work can shed some important light on the design of highly efficient photocatalysts for both energy and environmental applications.
光催化 CO 转化为碳氢燃料生产被认为是实现碳中和最有前途的策略之一。然而,其转化效率仍然不尽人意,主要是由于其严重的电荷转移电阻和缓慢的电荷动力学。在此,我们展示了一种通过氧空位修饰的二钼酸铋纳米花(BMOVs)和二维二硒化铋复合(Bi/BMOVs)组装的可调谐界面电荷转移在光催化 CO 转化中的应用。具体来说,BMOVs 和二硒化铋之间形成的欧姆接触的精细设计可以调节界面电荷转移电阻。根据密度泛函理论(DFT)模拟,证实了这种优异的电荷动力学归因于欧姆接触的可调内置电场(IEF)。因此,优化后的 Bi/BMOVs 的光催化 CO 还原性能(CO 和 CH 的产率分别为 169.93 和 4.65 µmol g h )比原始 BMO(CO 和 CH 的产率分别为 16.06 和 0.51 µmol g h )高约 10 倍。本工作中报道的可调谐欧姆接触界面电阻可以为高效光催化剂的设计提供一些重要的启示,这些光催化剂在能源和环境应用方面都具有重要意义。