Ping Li, Kai Chen, Ge Ge, Hailong Zhang, Shijian Zhang, Xiuxiu Huang, Wenbin Ruan, Congliang Cheng, Yaner Ruan, C. X. Zhang, Xiufang Wang
Photoelectrochemical (PEC) water oxidation for hydrogen production is an appealing strategy, yet the oxygen evolution reaction (OER) at the photoanode faces bottlenecks: weak water activation and a low charge utilization rate. Here, hydrophilic SO 4 2– groups were introduced at the CdS/SnS 2 photoanode interface to construct directional interfacial coordination bonds (Sn-SO 4 2– -Cd) that serve as interfacial charge-migration channels, thereby improving the utilization efficiency of photogenerated carriers. The optimized SO 4 2– -SnS 2 /CdS photoanode exhibits a maximum photocurrent density value of 1.48 mA cm –2 at 1.23 V vs RHE, demonstrating an enhancement of about 9.25 times relative to the SnS 2 photoanode. The photocurrent density value of the SO 4 2– -SnS 2 /CdS-PANI photoanode may be further increased to 1.83 mA cm –2 by loading polyaniline (PANI) as a hole transport layer (HTL), resulting in an applied bias photon-to-current efficiency (ABPE) of 0.76% and prolonged photostability. From experimental findings and density functional theory (DFT) simulations, the meliorative water oxidation capacity is caused by the design of the Sn-SO 4 2– -Cd directional interfacial coordination in SO 4 2– -SnS 2 /CdS, which speeds up the photoinduced charge transfer, lowers the water-splitting energy barriers, and raises the OER dynamics. This straightforward, yet broad method offers a foundation to design directional interfacial coordination bonds for high-performance PEC water-splitting applications.