Department of Chemistry and School of Analytical Sciences Adlershof (SALSA), Humboldt-Universität zu Berlin, 10099 Berlin, Germany.
ACS Sens. 2024 Sep 27;9(9):4450-4468. doi: 10.1021/acssensors.4c01391. Epub 2024 Sep 4.
Obtaining analytical information about chemical species at interfaces is fundamentally important to improving our understanding of chemical reactions and biological processes. pH at solid-liquid interfaces is found to deviate from the bulk solution value, for example, in electrocatalytic reactions at surfaces or during the corrosion of metals. Also, in the vicinity of living cells, metabolic reactions or cellular responses cause changes in pH at the extracellular interface. In this review, we collect recent progress in the development of sensors with the capability to detect pH at or close to solid-liquid and bio interfaces, with spatial and time resolution. After the two main principles of pH detection are presented, the different classes of molecules and materials that are used as active components in these sensors are described. The review then focuses on the reported electroanalytical techniques for local pH sensing. As application examples, we discuss model studies that exploit local pH sensing in the area of electrocatalysis, corrosion, and cellular interfaces. We conclude with a discussion of key challenges for wider use of this analytical approach, which shows promise to improve the mechanistic understanding of reactions and processes at realistic interfaces.
获取界面上化学物质的分析信息对于加深我们对化学反应和生物过程的理解至关重要。例如,在表面的电催化反应或金属腐蚀过程中,固-液界面处的 pH 值会偏离溶液本体值。此外,在活细胞附近,代谢反应或细胞响应会导致细胞外界面处的 pH 值发生变化。在这篇综述中,我们收集了近年来在开发具有在固-液和生物界面处或附近检测 pH 值的能力的传感器方面的最新进展,这些传感器具有空间和时间分辨率。在介绍了 pH 检测的两个主要原理之后,我们描述了这些传感器中用作活性成分的不同类别的分子和材料。然后,综述重点介绍了用于局部 pH 传感的报告电分析技术。作为应用实例,我们讨论了在电催化、腐蚀和细胞界面领域利用局部 pH 传感的模型研究。最后,我们讨论了更广泛地应用这种分析方法所面临的关键挑战,这种方法有望提高对实际界面上反应和过程的机理理解。