化学
电子转移
内球面电子转移
催化作用
电化学
外层电子转移
动力学
过渡金属
金属
氧化还原
离子
无机化学
光化学
物理化学
电极
有机化学
物理
量子力学
作者
Ning An,Nan Chen,Chuanping Feng,S. F. Zhang,Zhe Li,Tong Liu,Yang Liu,Wang Lu,Zhengyuan Feng,Huajian Gao,Hui-Jun Mu,Miao Li
标识
DOI:10.1021/acs.est.5c03860
摘要
In the realm of transition metal (Mn+) activated peroxymonosulfate (PMS), sluggish reduction kinetics of M(n+1)+ often lead to the rapid deactivation of catalytic centers, posing a significant challenge for commercialization of homogeneous advanced oxidation processes (AOPs). We report a pioneering elucidation of a distinct Co(II)/Co(III) cycling mechanism within electrochemically enhanced PMS-AOPs, utilizing Co(II) as a model catalyst. Remarkably, this cycling process predominantly unfolds in the anodic region, rather than the cathodic, revealing a novel aspect of electrochemical modulation. Co(III), generated by anodic oxidation, emerges as a pivotal species that disrupts the dimerized hydrolysis product ([Co(III)OH]24+). Electron transfer from the hydroxyl oxygen in [Co(III)OH]24+ to Co(III) induces electron redistribution, ultimately facilitating Co(III) reduction and release via both outer- and inner-sphere electron transfer pathways. Gibbs free energy calculations unequivocally confirm the spontaneity of the cyclic process. Our system exhibits superior performance metrics, achieving Co(IV)═O (5.57 × 10-2 mM/M Co) and SO4•- (2.51 × 10-6 mM/M OSO3) yields that surpass most reported catalytic systems, along with an exceptional mass activity of Co(II) (368.87 L/g). This study offers a fresh perspective on Mn+ regeneration for sustained PMS activation in homogeneous transition metal catalysis, with potential implications for advancing the field of environmental remediation.
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