Light-triggered oxygen redox activity at the edge of cobalt oxyhydroxide for superior water oxidation
Abstract
Abstract Introducing oxygen redox chemistry into cobalt oxyhydroxide effectively enhances catalytic activity by enabling direct O-O coupling, thereby bypassing the rate-limiting * OOH step in the conventional adsorbate evolution mechanism. However, the key challenge is to preserve the accessibility of non-bonding oxygen states while maintaining cobalt-oxygen covalency. Here we show that light irradiation triggers ligand-to-metal charge transfer in sulfur-treated cobalt oxyhydroxide (S-CoOOH), generating non-bonding oxygen states. These states then couple with adjacent ones to form direct O-O bonds. Through this way, the sulfur-treated sample performs enhanced OER activity under light, achieving an overpotential of 194 ± 3 mV at 10 mA cm −2 , which is 41 mV lower than in the dark. Further analysis reveals that light-induced oxygen redox activity is confined to the edge of catalyst. This activity originates from electron transitions from (M-O) to non-overlapping regions of Co 3 d and 4 p orbitals, driven by high-spin Co 3+ at the edge. This work highlights the critical role of light in inducing non-bonding oxygen states in transition metal-based catalysts and guides the development of oxygen-redox electrocatalysts.
Article Details
Authors (14)
Xin Zhang
Qiyun Wang
Qi Zhang
Haoyin Zhong
Department of Materials Science and Engineering
Chao Wu
Baorui Jia
Institute for Advanced Materials and Technology
Junchen Yu
Ke-Jin Zhou
Diamond Light Source, Harwell Campus, Didcot, UK.
Yuanjie Li
Yong-Wei Zhang
Institute of High Performance Computing (IHPC), Agency for Science, Technology and Research (A*STAR), 1 Fusionopolis Way, #16-16 Connexis, Singapore 138632, Singapore
Zhi Gen Yu
Institute of High Performance Computing
Shibo Xi
Xiaopeng Wang
Junmin Xue
Department of Materials Science and Engineering