Bhattacharyya Dhritiman, Videla Pablo E, Cattaneo Mauricio, Batista Victor S, Lian Tianquan, Kubiak Clifford P
Department of Chemistry, Emory University 1515 Dickey Drive Northeast Atlanta Georgia 30322 USA
Department of Chemistry and Energy Sciences Institute, Yale University 225 Prospect Street New Haven Connecticut 06520 USA
Chem Sci. 2021 Jul 13;12(30):10131-10149. doi: 10.1039/d1sc01876k. eCollection 2021 Aug 4.
External control of chemical processes is a subject of widespread interest in chemical research, including control of electrocatalytic processes with significant promise in energy research. The electrochemical double-layer is the nanoscale region next to the electrode/electrolyte interface where chemical reactions typically occur. Understanding the effects of electric fields within the electrochemical double layer requires a combination of synthesis, electrochemistry, spectroscopy, and theory. In particular, vibrational sum frequency generation (VSFG) spectroscopy is a powerful technique to probe the response of molecular catalysts at the electrode interface under bias. Fundamental understanding can be obtained synthetic tuning of the adsorbed molecular catalysts on the electrode surface and by combining experimental VSFG data with theoretical modelling of the Stark shift response. The resulting insights at the molecular level are particularly valuable for the development of new methodologies to control and characterize catalysts confined to electrode surfaces. This Perspective article is focused on how systematic modifications of molecules anchored to surfaces report information concerning the geometric, energetic, and electronic parameters of catalysts under bias attached to electrode surfaces.
化学过程的外部控制是化学研究中广泛关注的一个课题,包括对在能源研究中有重大前景的电催化过程的控制。电化学双层是紧邻电极/电解质界面的纳米级区域,化学反应通常在此发生。理解电化学双层内电场的影响需要综合运用合成、电化学、光谱学和理论。特别是,振动和频产生(VSFG)光谱是一种强大的技术,可用于探测偏置下电极界面处分子催化剂的响应。通过对电极表面吸附的分子催化剂进行合成调谐,并将实验VSFG数据与斯塔克位移响应的理论模型相结合,可以获得基本的认识。在分子水平上获得的这些见解对于开发控制和表征局限于电极表面的催化剂的新方法特别有价值。这篇展望文章重点关注锚定在表面的分子的系统修饰如何报告有关附着在电极表面的偏置下催化剂的几何、能量和电子参数的信息。