Wong Rachel, Batchelor-McAuley Christopher, Yang Minjun, Compton Richard G
Physical and Theoretical Chemistry Laboratory Department of Chemistry, University of Oxford, Oxford OX1 3QZ, U.K.
J Phys Chem Lett. 2022 Aug 25;13(33):7689-7693. doi: 10.1021/acs.jpclett.2c01922. Epub 2022 Aug 12.
How does heterogeneity in activity affect the response of nanoparticles? This problem is key to studying the structure-activity relationship of new electrocatalytic materials. However, addressing this problem theoretically and to a high degree of accuracy requires the use of three-dimensional electrochemical simulations that have, until recently, been challenging to undertake. To start to probe this question, we investigate how the diffusion-limited flux to a cube changes as a function of the number of active faces. Importantly, it is clearly demonstrated how the flux is not linearly proportional to the active surface area of the material due to the faces of the cube not having diffusional independence, meaning that the flux to each face reflects the activity or not of nearby faces. These results have clear and important implications for experimental work that uses a correlation-based approach to evidence changes in activity at the nanoscale.
活性的异质性如何影响纳米颗粒的响应?这个问题是研究新型电催化材料构效关系的关键。然而,从理论上高度精确地解决这个问题需要使用三维电化学模拟,而直到最近,进行这种模拟仍具有挑战性。为了开始探究这个问题,我们研究了扩散限制通量随立方体活性面数量的变化情况。重要的是,清楚地表明了由于立方体的面没有扩散独立性,通量与材料的活性表面积并非线性比例关系,这意味着流向每个面的通量反映了附近面的活性与否。这些结果对于采用基于相关性的方法来证明纳米尺度活性变化的实验工作具有明确且重要的意义。