Su Xiao, Hatton T Alan
Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.
Phys Chem Chem Phys. 2017 Sep 13;19(35):23570-23584. doi: 10.1039/c7cp02822a.
Adsorption at charged interfaces plays an important role across all aspects of physical chemistry, from biological interactions within living organisms to chemical processes such as catalysis and separations. With recent advances in materials chemistry, there are a host of modified electrodes being investigated for electrosorption, especially in separations science. In this perspective, we provide an overview of functional interfaces being used for electrosorption, ranging from electrochemical separations such as deionization and selective product recovery to biological applications. We cover the various molecular mechanisms which can be used to enhance ion capacity, and in some cases, provide selectivity; as well as discuss the parasitic Faradaic reactions which often impair electrosorption performance. Finally, we point to the importance of electrochemical configurations, in particular the advantages of asymmetric cell design, and highlight the opportunities for selective electrosorption brought about by redox-mediated systems.
带电界面的吸附在物理化学的各个方面都起着重要作用,从生物体内的生物相互作用到催化和分离等化学过程。随着材料化学的最新进展,有许多修饰电极正在被研究用于电吸附,特别是在分离科学领域。从这个角度出发,我们概述了用于电吸附的功能界面,范围从电化学分离如去离子化和选择性产物回收到生物应用。我们涵盖了可用于提高离子容量的各种分子机制,在某些情况下还能提供选择性;并讨论了常常损害电吸附性能的寄生法拉第反应。最后,我们指出电化学配置的重要性,特别是不对称电池设计的优势,并强调氧化还原介导系统带来的选择性电吸附机会。