Kim Byung Keun, Kim Myung Jun, Kim Jae Jeong
School of Chemical and Biological Engineering, Institute of Chemical Processes, Seoul National University, Gwanak 1, Gwanak-ro, Gwanak-gu, Seoul 08826, Republic of Korea.
Department of Applied Chemistry, Kyung Hee University, Yongin 17104, Republic of Korea.
ACS Appl Mater Interfaces. 2021 Mar 17;13(10):11940-11947. doi: 10.1021/acsami.0c22409. Epub 2021 Mar 2.
The activity of electrocatalysts can be improved by modifying their electronic structures and surface morphologies. In electrochemical reactions with gas evolution, the performance of an electrocatalyst is also affected by how easily gas bubbles depart from an electrocatalyst surface. However, it is difficult to quantitatively estimate the improvement in the performance that can be achieved by promoting the departure of gas bubbles from the electrocatalyst surface. This study investigated the effect of surface hydrophilicity on the hydrogen evolution reaction (HER). The water contact angles of the nickel phosphorous (NiP) films were controlled from 40.3 to 77.2° with imperceptible differences in their intrinsic electronic structures and surface areas. Electrochemical analyses and visualization of the gas evolution on the NiP films indicated that an increase in the hydrophilicity of the electrocatalysts reduced the size of gas bubbles formed on the NiP films and shortened the duration of the bubbles' stay on the NiP surface. A faster gas departure enabled continuous participation of the electrocatalyst surface in hydrogen evolution, leading to a stable electrochemical behavior of the electrocatalyst and a decrease in the overpotential at a given current density. A full-cell test revealed that the enhancement of hydrogen bubble departure on a hydrophilic NiP surface with a contact angle of 40.3° reduced the overpotential by 134 mV at a current density of 100 mA/cm compared to a more hydrophobic film with a contact angle of 77.2°.
通过改变电催化剂的电子结构和表面形态,可以提高其活性。在析气的电化学反应中,电催化剂的性能还受到气泡从电催化剂表面脱离难易程度的影响。然而,很难定量估计通过促进气泡从电催化剂表面脱离所能实现的性能提升。本研究考察了表面亲水性对析氢反应(HER)的影响。控制镍磷(NiP)薄膜的水接触角在40.3°至77.2°之间,其固有电子结构和表面积的差异不明显。对NiP薄膜进行的电化学分析和气态析出可视化表明,电催化剂亲水性的增加减小了在NiP薄膜上形成的气泡尺寸,并缩短了气泡在NiP表面停留的持续时间。更快的气体脱离使得电催化剂表面能够持续参与析氢反应,从而导致电催化剂具有稳定的电化学行为,并降低了给定电流密度下的过电位。全电池测试表明,与接触角为77.2°的疏水性更强的薄膜相比,接触角为40.3°的亲水性NiP表面上氢气泡脱离的增强在电流密度为100 mA/cm²时使过电位降低了134 mV。