Liu Heng, Zhang Di, Wang Yuan, Li Hao
Advanced Institute for Materials Research (WPI-AIMR), Tohoku University, Sendai 980-8577, Japan.
Langmuir. 2024 Apr 9;40(14):7632-7638. doi: 10.1021/acs.langmuir.4c00298. Epub 2024 Mar 29.
In the analysis of electrocatalysis mechanisms and the design of catalysts, the effect of electrochemistry-induced surface coverage is a critical consideration that should not be overlooked. The surface Pourbaix diagram emerges as a fundamental tool in this context, providing essential insights into the surface coverage of adsorbates generated via electrochemical potential-driven water activation. A classic surface Pourbaix diagram considers the pH effects by correcting the free energy of H ions by the concentration-dependent term: - ln(10) × pH, which is independent of the reversible hydrogen electrode (RHE) scale. However, this is sometimes inconsistent with the experimentally observed potential-dependent surface coverage at an RHE scale, especially under high-pH conditions. Here, we derived the pH-dependent surface Pourbaix diagram at an RHE scale by considering the energetics computed by density functional theory with the Bayesian Error Estimation Functional with van der Waals corrections (BEEF-vdW), the electric field effects, the derived adsorption-induced dipole moment and polarizability, and the potential of zero-charge. Using Pt(111) as the typical example, we found that the surface coverage predicted by the proposed RHE-dependent surface Pourbaix diagram can significantly minimize the discrepancy between theory and experimental observations, especially under neutral-alkaline, moderate-potential conditions. This work provides a new methodology and establishes guidelines for the precise analysis of the surface coverage prior to the evaluation of the activity of an electrocatalyst.
在电催化机理分析和催化剂设计中,电化学诱导表面覆盖率的影响是一个不应被忽视的关键因素。在此背景下,表面Pourbaix图成为一个基本工具,它能为通过电化学势驱动水活化产生的吸附质的表面覆盖率提供重要见解。经典的表面Pourbaix图通过浓度相关项 - ln(10) × pH校正H离子的自由能来考虑pH效应,这与可逆氢电极(RHE)标度无关。然而,这有时与在RHE标度下实验观察到的电位依赖表面覆盖率不一致,特别是在高pH条件下。在这里,我们通过考虑采用含范德华校正的贝叶斯误差估计泛函(BEEF-vdW)的密度泛函理论计算的能量学、电场效应、推导的吸附诱导偶极矩和极化率以及零电荷电位,推导出了RHE标度下的pH依赖表面Pourbaix图。以Pt(111)为例,我们发现所提出的依赖RHE的表面Pourbaix图预测的表面覆盖率能显著减小理论与实验观察之间的差异,特别是在中性 - 碱性、中等电位条件下。这项工作提供了一种新方法,并为在评估电催化剂活性之前精确分析表面覆盖率建立了指导原则。