Xu Ting, Xie Yuxin, Qi Shengliang, Zhang Hefeng, Ma Weiguang, Wang Junhui, Gao Yuying, Wang Lianzhou, Zong Xu
Marine Engineering College, Dalian Maritime University, Dalian, Liaoning, 116026, China.
State Key Laboratory of Catalysis, Dalian National Laboratory for Clean Energy, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, Liaoning, 116026, China.
Angew Chem Int Ed Engl. 2024 Oct 7;63(41):e202409945. doi: 10.1002/anie.202409945. Epub 2024 Sep 10.
Metal halide perovskites (MHPs) have emerged as attractive candidates for producing green hydrogen via photocatalytic pathway. However, the presence of abundant defects and absence of efficient hydrogen evolution reaction (HER) active sites on MHPs seriously limit the solar-to-chemical (STC) conversion efficiency. Herein, to address this issue, we present a bi-functionalization strategy through decorating MHPs with a molecular molybdenum-sulfur-containing co-catalyst precursor. By virtue of the strong chemical interaction between lead and sulfur and the good dispersion of the molecular co-catalyst precursor in the deposition solution, a uniform and intimate decoration of the MHPs surface with lead sulfide (PbS) and amorphous molybdenum sulfide (MoS) co-catalysts is obtained simultaneously. We show that the PbS co-catalyst can effectively passivate the Pb-related defects on the MHPs surface, thus retarding the charge recombination and promoting the charge transfer efficiency significantly. The amorphous MoS co-catalyst further promotes the extraction of photogenerated electrons from MHPs and facilitates the HER catalysis. Consequently, drastically enhanced photocatalytic HER activities are obtained on representative MHPs through the synergistic functionalization of PbS and MoS co-catalysts. A solar-to-chemical (STC) conversion efficiency of ca. 4.63 % is achieved on the bi-functionalized FAPbBrI (FA=CH(NH)), which is among the highest values reported for MHPs.
金属卤化物钙钛矿(MHPs)已成为通过光催化途径生产绿色氢气的有吸引力的候选材料。然而,MHPs上存在大量缺陷且缺乏高效的析氢反应(HER)活性位点,严重限制了太阳能到化学能(STC)的转换效率。在此,为了解决这个问题,我们提出了一种双功能化策略,即通过用含钼硫分子助催化剂前体修饰MHPs。由于铅与硫之间的强化学相互作用以及分子助催化剂前体在沉积溶液中的良好分散性,同时获得了硫化铅(PbS)和非晶态硫化钼(MoS)助催化剂对MHPs表面的均匀且紧密的修饰。我们表明,PbS助催化剂可以有效地钝化MHPs表面上与铅相关的缺陷,从而显著延缓电荷复合并提高电荷转移效率。非晶态MoS助催化剂进一步促进了光生电子从MHPs的提取并促进了HER催化。因此,通过PbS和MoS助催化剂的协同功能化,在代表性的MHPs上获得了大幅增强的光催化HER活性。在双功能化的FAPbBrI(FA = CH(NH))上实现了约4.63%的太阳能到化学能(STC)转换效率,这是MHPs报道的最高值之一。