Department of Mechanical Engineering and Materials Science, Yale University, New Haven, CT, 06511, USA.
Energy Sciences Institute, Yale West Campus, West Haven, CT, 06525, USA.
Adv Mater. 2018 May;30(18):e1706076. doi: 10.1002/adma.201706076. Epub 2018 Mar 24.
For the electrochemical hydrogen evolution reaction (HER), the electrical properties of catalysts can play an important role in influencing the overall catalytic activity. This is particularly important for semiconducting HER catalysts such as MoS , which has been extensively studied over the last decade. Herein, on-chip microreactors on two model catalysts, semiconducting MoS and semimetallic WTe , are employed to extract the effects of individual factors and study their relations with the HER catalytic activity. It is shown that electron injection at the catalyst/current collector interface and intralayer and interlayer charge transport within the catalyst can be more important than thermodynamic energy considerations. For WTe , the site-dependent activities and the relations of the pure thermodynamics to the overall activity are measured and established, as the microreactors allow precise measurements of the type and area of the catalytic sites. The approach presents opportunities to study electrochemical reactions systematically to help establish rational design principles for future electrocatalysts.
对于电化学析氢反应(HER),催化剂的电学性质在影响整体催化活性方面起着重要作用。这对于 MoS 等半导体 HER 催化剂尤为重要,过去十年中对其进行了广泛研究。在此,在两种模型催化剂(半导体 MoS 和半金属 WTe )上采用片上微反应器来提取单个因素的影响,并研究它们与 HER 催化活性的关系。结果表明,催化剂/集流器界面处的电子注入以及催化剂内的层内和层间电荷输运可能比热力学能量因素更为重要。对于 WTe,通过微反应器可以精确测量催化位点的类型和面积,从而测量和建立了位点依赖性活性以及纯热力学与整体活性之间的关系。该方法为系统地研究电化学反应提供了机会,有助于为未来的电催化剂建立合理的设计原则。