Zhang Bingke, Genene Zewdneh, Wang Jinzhong, Wang Dongbo, Zhao Chenchen, Pan Jingwen, Liu Donghao, Sun Wenhao, Zhu Jiefang, Wang Ergang
Department of Optoelectronic Information Science, School of Materials Science and Engineering, Harbin Institute of Technology, Harbin, 150001, China.
Department of Chemistry-Ångström Laboratory, Uppsala University, Uppsala, SE-751 21, Sweden.
Small. 2024 Oct;20(43):e2402649. doi: 10.1002/smll.202402649. Epub 2024 Jul 1.
The utilization of the organic-inorganic hybrid photocatalysts for water splitting has gained significant attention due to their ability to combine the advantages of both materials and generate synergistic effects. However, they are still far from practical application due to the limited understanding of the interactions between these two components and the complexity of their preparation process. Herein, a facial approach by combining a glycolated conjugated polymer with a TiO mesoporous sphere to prepare high-efficiency hybrid photocatalysts is presented. The functionalization of conjugated polymers with hydrophilic oligo (ethylene glycol) side chains can not only facilitate the dispersion of conjugated polymers in water but also promote the interaction with TiO forming stable heterojunction nanoparticles. An apparent quantum yield of 53.3% at 365 nm and a hydrogen evolution rate of 35.7 mmol h g is achieved by the photocatalyst in the presence of Pt co-catalyst. Advanced photophysical studies based on femtosecond transient absorption spectroscopy and in situ, XPS analyses reveal the charge transfer mechanism at type II heterojunction interfaces. This work shows the promising prospect of glycolated polymers in the construction of hybrid heterojunctions for photocatalytic hydrogen production and offers a deep understanding of high photocatalytic performance by such heterojunction photocatalysts.
有机-无机杂化光催化剂用于水分解因其能够结合两种材料的优点并产生协同效应而备受关注。然而,由于对这两种组分之间相互作用的理解有限以及其制备过程的复杂性,它们仍远未达到实际应用。在此,提出了一种通过将糖基化共轭聚合物与TiO介孔球相结合来制备高效杂化光催化剂的简便方法。用亲水性低聚(乙二醇)侧链对共轭聚合物进行功能化不仅可以促进共轭聚合物在水中的分散,还可以促进与TiO的相互作用,形成稳定的异质结纳米颗粒。在Pt助催化剂存在下,该光催化剂在365nm处的表观量子产率为53.3%,析氢速率为35.7mmol h g 。基于飞秒瞬态吸收光谱和原位XPS分析的先进光物理研究揭示了II型异质结界面处的电荷转移机制。这项工作展示了糖基化聚合物在构建用于光催化制氢的杂化异质结方面的广阔前景,并为这种异质结光催化剂的高光催化性能提供了深入理解。