Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, California 90095, United States.
Department of Chemistry, Boston College, Chestnut Hill, Massachusetts 02467, United States.
ACS Appl Mater Interfaces. 2023 Jun 21;15(24):28851-28878. doi: 10.1021/acsami.3c01726. Epub 2023 Jun 9.
The use of molecularly modified electrodes in catalysis heralds a new paradigm in designing chemical transformations by allowing control of catalytic activity. Herein, we provide an overview of reported methods to develop electrodes functionalized with organometallic complexes and a summary of commonly used techniques for characterizing the electrode surface after immobilization. In addition, we highlight the implications of surface functionalization in catalysis to emphasize the key aspects that should be considered during the development and optimization of functionalized electrodes. Particularly, surface-molecule electronic coupling and electrostatic interactions within a hybrid system are discussed to present effective handles in tuning catalytic activity. We envision that this emerging type of hybrid catalytic system has the potential to combine the advantages of homogeneous catalysis and heterogeneous supports and could be applied to an expanded range of transformations beyond energy conversion.
在催化中使用分子修饰电极预示着通过控制催化活性来设计化学转化的新范例。在此,我们提供了对报道的用有机金属配合物功能化电极的方法的概述,并对固定化后电极表面常用技术进行了总结。此外,我们强调了表面功能化在催化中的意义,以强调在功能化电极的开发和优化过程中应考虑的关键方面。特别地,讨论了混合体系中表面分子电子偶联和静电相互作用,以提供调节催化活性的有效手段。我们设想这种新兴的混合催化体系有可能结合均相催化和多相载体的优势,并可应用于除能量转换以外的更广泛的转化。