钴
咔咯
催化作用
化学
电子转移
电化学
反键分子轨道
二氧化碳电化学还原
光化学
材料科学
无机化学
有机化学
电极
一氧化碳
电子
物理化学
物理
原子轨道
量子力学
作者
Sabrina Gonglach,Shounik Paul,Michael Haas,Felix Pillwein,S.S. Sreejith,Soumitra Barman,Ratnadip De,Stefan Müllegger,Philipp Gerschel,Ulf‐Peter Apfel,Halime Coskun,Abdalaziz Aljabour,Philipp Stadler,Wolfgang Schöfberger,Soumyajit Roy
标识
DOI:10.1038/s41467-019-11868-5
摘要
Electrochemical conversion of CO2 to alcohols is one of the most challenging methods of conversion and storage of electrical energy in the form of high-energy fuels. The challenge lies in the catalyst design to enable its real-life implementation. Herein, we demonstrate the synthesis and characterization of a cobalt(III) triphenylphosphine corrole complex, which contains three polyethylene glycol residues attached at the meso-phenyl groups. Electron-donation and therefore reduction of the cobalt from cobalt(III) to cobalt(I) is accompanied by removal of the axial ligand, thus resulting in a square-planar cobalt(I) complex. The cobalt(I) as an electron-rich supernucleophilic d8-configurated metal centre, where two electrons occupy and fill up the antibonding dz2 orbital. This orbital possesses high affinity towards electrophiles, allowing for such electronically configurated metals reactions with carbon dioxide. Herein, we report the potential dependent heterogeneous electroreduction of CO2 to ethanol or methanol of an immobilized cobalt A3-corrole catalyst system. In moderately acidic aqueous medium (pH = 6.0), the cobalt corrole modified carbon paper electrode exhibits a Faradaic Efficiency (FE%) of 48 % towards ethanol production.
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