Atyf Zaynab, Lenne Quentin, Ghilane Jalal
Université Paris Cité, ITODYS, CNRS, UMR 7086, 15 rue J-A de Baïf, F-75013 Paris, France.
Molecules. 2024 Feb 13;29(4):835. doi: 10.3390/molecules29040835.
In this study, we explored the surface modification of a glassy carbon electrode through the electrografting of 4-Aminophenyl phosphate, which features heteroatoms and ionic properties. The electrochemical grafting process involves reducing in situ-generated diazonium derivatives. The primary objective of this research was to immobilize organic layers and assess their electrochemical and surface properties. Subsequently, the generated surface serves as a template for the electrochemical growth of Pd and Co nanoparticles on functionalized electrodes. The electrocatalytic performances of these hybrid electrodes in driving the hydrogen evolution reaction were investigated. The obtained results indicate an enhancement in the electrocatalytic activity of the modified electrodes, where lower overpotential and higher stability were observed when the catalyst was electrodeposited onto the attached ionic layer. These findings highlight the synergistic effect between the attached phenyl phosphate moieties and electrocatalysts.
在本研究中,我们通过电接枝4-氨基苯磷酸对玻碳电极进行了表面改性,4-氨基苯磷酸具有杂原子和离子特性。电化学接枝过程涉及原位生成的重氮衍生物的还原。本研究的主要目的是固定有机层并评估其电化学和表面性质。随后,生成的表面作为在功能化电极上电化学生长钯和钴纳米颗粒的模板。研究了这些复合电极在驱动析氢反应中的电催化性能。所得结果表明改性电极的电催化活性有所增强,当催化剂电沉积到附着的离子层上时,观察到较低的过电位和较高的稳定性。这些发现突出了附着的苯基磷酸部分与电催化剂之间的协同效应。