Li Fei, Yu Fengshou, Du Jian, Wang Yong, Zhu Yong, Li Xiaona, Sun Licheng
State Key Laboratory of Fine Chemicals, DUT-KTH Joint Education and Research Center on Molecular Devices, Dalian University of Technology, Dalian, 116024, China.
Key Laboratory of Industrial Ecology and Environmental Engineering, Ministry of Education, School of Environmental Science and Technology, Dalian University of Technology, Dalian, 116024, China.
Chem Asian J. 2017 Oct 18;12(20):2666-2669. doi: 10.1002/asia.201701123. Epub 2017 Sep 25.
Water splitting mediated by electron-coupled-proton buffer (ECPB) provides an efficient way to avoid gas mixing by separating oxygen evolution from hydrogen evolution in space and time. Though electrochemical and photoelectrochemcial water oxidation have been incorporated in such a two-step water splitting system, alternative ways to reduce the cost and energy input for decoupling two half-reactions are desired. Herein, we show the feasibility of photocatalytic oxygen evolution in a powder system with BiVO as a photocatalyst and polyoxometalate H PMo O as an electron and proton acceptor. The resulting reaction mixture was allowed to be directly used for the subsequent hydrogen evolution with the reduced H PMo O as electron and proton donors. Our system exhibits excellent stability in repeated oxygen and hydrogen evolution, which brings considerable convenience to decoupled water splitting.
由电子耦合质子缓冲剂(ECPB)介导的水分解提供了一种有效的方法,通过在空间和时间上分离析氧和析氢来避免气体混合。尽管电化学和光电化学水氧化已被纳入这样的两步水分解系统,但仍需要其他方法来降低解耦两个半反应的成本和能量输入。在此,我们展示了以BiVO为光催化剂、多金属氧酸盐H PMo O为电子和质子受体的粉末系统中光催化析氧的可行性。所得反应混合物可直接用于随后以还原的H PMo O作为电子和质子供体的析氢反应。我们的系统在重复析氧和析氢过程中表现出优异的稳定性,这为解耦水分解带来了极大的便利。