Center for Integrated Nanostructure Physics (CINAP), Institute for Basic Science (IBS), Sungkyunkwan University, Suwon 16419, Korea.
Department of Chemistry, Sungkyunkwan University, Suwon 16419, Korea.
Molecules. 2020 Apr 23;25(8):1965. doi: 10.3390/molecules25081965.
Water oxidation and reduction reactions play vital roles in highly efficient hydrogen production conducted by an electrolyzer, in which the enhanced efficiency of the system is apparently accompanied by the development of active electrocatalysts. Solar energy, a sustainable and clean energy source, can supply the kinetic energy to increase the rates of catalytic reactions. In this regard, understanding of the underlying fundamental mechanisms of the photo/electrochemical process is critical for future development. Combining light-absorbing materials with catalysts has become essential to maximizing the efficiency of hydrogen production. To fabricate an efficient absorber-catalysts system, it is imperative to fully understand the vital role of surface/interface modulation for enhanced charge transfer/separation and catalytic activity for a specific reaction. The electronic and chemical structures at the interface are directly correlated to charge carrier movements and subsequent chemical adsorption and reaction of the reactants. Therefore, rational surface modulation can indeed enhance the catalytic efficiency by preventing charge recombination and prompting transfer, increasing the reactant concentration, and ultimately boosting the catalytic reaction. Herein, the authors review recent progress on the surface modification of nanomaterials as photo/electrochemical catalysts for water reduction and oxidation, considering two successive photogenerated charge transfer/separation and catalytic chemical reactions. It is expected that this review paper will be helpful for the future development of photo/electrocatalysts.
水的氧化还原反应在电解槽高效制氢中起着至关重要的作用,而提高系统效率显然伴随着活性电催化剂的发展。太阳能作为一种可持续和清洁的能源,可以提供动能来提高催化反应的速率。在这方面,理解光/电化学过程的基本机制对于未来的发展至关重要。将吸光材料与催化剂结合已成为最大限度提高制氢效率的必要条件。为了制造高效的吸光-催化剂体系,充分理解表面/界面调制对于增强特定反应的电荷转移/分离和催化活性的重要作用是至关重要的。界面处的电子和化学结构与载流子的运动以及随后反应物的化学吸附和反应直接相关。因此,合理的表面调制确实可以通过防止电荷复合和促进转移、增加反应物浓度,最终提高催化反应来提高催化效率。本文综述了纳米材料作为光/电催化剂在水还原和氧化方面的表面修饰的最新进展,考虑了两个连续的光生电荷转移/分离和催化化学反应。预计这篇综述文章将有助于光/电催化剂的未来发展。