Anchored Cobalt Nanoparticles on Layered Perovskites for Rapid Peroxymonosulfate Activation in Antibiotic Degradation.

Wang, Yaobin; Li, Dong; Ge, Xinlei; Yu, Jianghua; Zhao, Yunxia; Bu, Yunfei · Adv Mater · 2024

basic_science · Level V

Where this comes from

Abstract

In the Fenton-like reaction, revealing the dynamic evolution of the active sites is crucial to achieve the activity improvement and stability of the catalyst. This study reports a perovskite oxide in which atomic (Co<sup>0</sup>) in situ embedded exsolution occurs during the high-temperature phase transition. This unique anchoring strategy significantly improves the Co<sup>3+</sup>/Co<sup>2+</sup> cycling efficiency at the interface and inhibits metal leaching during peroxymonosulfate (PMS) activation. The Co@L-PBMC catalyst exhibits superior PMS activation ability and could achieve 99% degradation of tetracycline within 5 min. The combination of experimental characterization and density functional theory (DFT) calculations elucidates that the electron-deficient oxygen vacancy accepts an electron from the Co 3d-orbital, resulting in a significant electron delocalization of the Co site, thereby facilitating the adsorption of the *HSO<sub>5</sub>/*OH intermediate onto the "metal-V<sub>O</sub> bridge" structure. This work provides insights into the PMS activation mechanism at the atomic level, which will guide the rational design of next-generation catalysts for environmental remediation.