Luo Yuting, Chiang Sum Wai, Tang Lei, Zhang Zhiyuan, Yang Fengning, Yu Qiangmin, Ding Baofu, Liu Bilu
Shenzhen Geim Graphene Center (SGC) Tsinghua-Berkeley Shenzhen Institute (TBSI) and Tsinghua Shenzhen International Graduate School (TSIGS) Tsinghua University Shenzhen 518055 P. R. China.
Tsinghua Shenzhen International Graduate School (TSIGS) Tsinghua University Shenzhen 518055 P. R. China.
Small Sci. 2021 Mar 27;1(5):2000059. doi: 10.1002/smsc.202000059. eCollection 2021 May.
Understanding the mechanisms and developing strategies toward efficient electrocatalysis at gas-liquid-solid interfaces are important yet challenging. In the past decades, researchers have devoted many efforts to improve catalyst activity by modulating electronic properties of catalysts in terms of chemical components and physical features. Herein, a mosaic catalyst, which is defined as a catalyst with spatially isolated and periodically distributed active areas, is developed to dramatically improve the activity of catalysts. Taking Pt catalyst as an example, the mosaic Pt leads to high catalytic performance, showing a specific activity 11 times higher than that of uniform Pt films for hydrogen evolution reaction (HER), as well as higher current densities than commercial Pt/C and uniform Pt films. Such a strategy is found to be general to other catalysts (e.g., 2D PtS) and other reactions (e.g., oxygen evolution reaction). The improved catalytic performance of the mosaic catalysts is attributed to enhanced mass transferability and local electric field strength, both of which are determined by the occupation ratios of catalysts. The work shines new light on manipulating electrocatalysis from the perspective of the spatial structures of catalysts, which guides the design of efficient catalysts for heterogeneous reactions.
了解气-液-固界面高效电催化的机制并制定相应策略既重要又具有挑战性。在过去几十年里,研究人员致力于通过在化学成分和物理特性方面调节催化剂的电子性质来提高催化剂活性。在此,开发了一种镶嵌催化剂,其定义为具有空间隔离且周期性分布的活性区域的催化剂,以显著提高催化剂的活性。以铂催化剂为例,镶嵌铂具有高催化性能,在析氢反应(HER)中显示出比均匀铂膜高11倍的比活性,以及比商业铂碳和均匀铂膜更高的电流密度。发现这种策略对其他催化剂(如二维PtS)和其他反应(如析氧反应)也普遍适用。镶嵌催化剂催化性能的提高归因于传质能力和局部电场强度的增强,这两者均由催化剂的占有率决定。这项工作从催化剂的空间结构角度为操纵电催化提供了新的思路,指导了用于多相反应的高效催化剂的设计。