Zhang Yingtian, Yu Shuxian, Luo Peipei, Xu Shisong, Zhang Xianxi, Zhou Huawei, Du Jiyuan, Yang Jie, Xin Nana, Kong Yuxia, Liu Junhai, Chen Baoli, Lu Jiaxing
Shandong Provincial Key Laboratory of Chemical Energy Storage and Novel Cell Technology, School of Chemistry and Chemical Engineering, Liaocheng University, Liaocheng 252059, People's Republic of China.
Shanghai Key Laboratory of Green Chemistry and Chemical Processes, School of Chemistry and Molecular Engineering, East China Normal University, Shanghai 200062, People's Republic of China.
R Soc Open Sci. 2018 Aug 15;5(8):180897. doi: 10.1098/rsos.180897. eCollection 2018 Aug.
Resulting from the drastic increase of atmospheric CO concentration day by day, global warming has become a serious environmental issue nowadays. The fixation of CO to obtain desirable, economically competitive chemicals has recently received considerable attention. This work investigates the fixation of CO along with three bromopyridines via a facile electrochemical method using a silver cathode to synthesize picolinic acids, which are important industrial and fine chemicals. Cyclic voltammetry is employed to investigate the cyclic voltammetric behaviour of bromopyridines. In addition, systematic study is conducted to study the relationships between the picolinic acids' yield and the electrolysis conditions and intrinsic parameters. The results show that the target picolinic acids' yields are strongly dependent on various conditions such as solvent, supporting electrolyte, current density, cathode material, charge passed, temperature and the nature of the substrates. Moreover, in the studied electrode materials such as Ag, Ni, Ti, Pt and GC, electrolysis and cyclic voltammetry show that Ag has a good electrocatalytic effect on the reduction and carboxylation of bromopyridine. This facile electrochemical route for fixation of CO provides an indispensable reference for the conversion and utilization of CO under mild conditions.
由于大气中二氧化碳浓度日益急剧增加,全球变暖如今已成为一个严重的环境问题。将二氧化碳固定以获得理想的、具有经济竞争力的化学品最近受到了相当大的关注。这项工作研究了通过使用银阴极的简便电化学方法,将二氧化碳与三种溴吡啶一起固定,以合成吡啶甲酸,吡啶甲酸是重要的工业化学品和精细化学品。采用循环伏安法研究溴吡啶的循环伏安行为。此外,还进行了系统研究,以研究吡啶甲酸产率与电解条件及内在参数之间的关系。结果表明,目标吡啶甲酸的产率强烈依赖于各种条件,如溶剂、支持电解质、电流密度、阴极材料、通过的电荷量、温度和底物的性质。此外,在所研究的电极材料如银、镍、钛、铂和玻璃碳中,电解和循环伏安法表明,银对溴吡啶的还原和羧化具有良好的电催化作用。这种简便的二氧化碳固定电化学路线为温和条件下二氧化碳的转化和利用提供了不可或缺的参考。