Joon Yong Park, Myeongbum Ko, Gisang Park, Arpan Bera, Seung Min Ok, J. Kim, Hyeyoung Shin, Ki Min Nam
Selective chloride oxidation is the bottleneck in realistic seawater splitting, where oxidation-driven acidification imposes a selectivity–stability trade-off. We report a programmable sequential photodeposition strategy that constructs surface-defined IrO 2 –PdO heterointerfaces on single-crystalline Co 3 O 4 nanocubes, yielding ∼1 nm clusters with controlled composition. This approach enables systematic interface engineering, generating heterointerfaces that stabilize catalyst under acidifying seawater electrolysis. The resulting IrO 2 –PdO/Co 3 O 4 catalyst exhibits nearly 100% selectivity for chloride oxidation over oxygen evolution in neutral NaCl and retains high activity and durability under localized acidification, outperforming IrO 2 /Co 3 O 4, PdO/Co 3 O 4, and commercial Ti/IrRu anodes. Density functional theory calculations show that interfacial electronic interactions optimize Cl* binding and lower activation barriers relative to isolated IrO 2 and PdO. Under continuous-flow conditions, the catalyst offers exceptional durability and sustained HOCl production, demonstrating practical relevance for on-site disinfectant generation. This consecutive photodeposition provides a controllable route to design durable heterointerfaces relevant to seawater electrolysis.