Department of Bioengineering, University of California, Riverside, CA 92521, USA.
Department of Chemistry, University of California, Riverside, CA 92521, USA.
Molecules. 2023 May 26;28(11):4360. doi: 10.3390/molecules28114360.
Medium polarity plays a crucial role in charge-transfer processes and electrochemistry. The added supporting electrolyte in electrochemical setups, essential for attaining the needed electrical conductivity, sets challenges for estimating medium polarity. Herein, we resort to Lippert-Mataga-Ooshika (LMO) formalism for estimating the Onsager polarity of electrolyte organic solutions pertinent to electrochemical analysis. An amine derivative of 1,8-naphthalimide proves to be an appropriate photoprobe for LMO analysis. An increase in electrolyte concentration enhances the polarity of the solutions. This effect becomes especially pronounced for low-polarity solvents. Adding 100 mM tetrabutylammonium hexafluorophosphate to chloroform results in solution polarity exceeding that of neat dichloromethane and 1,2-dichloroethane. Conversely, the observed polarity enhancement that emerges upon the same electrolyte addition to solvents such as acetonitrile and ,-dimethylformamide is hardly as dramatic. Measured refractive indices provide a means for converting Onsager to Born polarity, which is essential for analyzing medium effects on electrochemical trends. This study demonstrates a robust optical means, encompassing steady-state spectroscopy and refractometry, for characterizing solution properties important for charge-transfer science and electrochemistry.
中等极性在电荷转移过程和电化学中起着至关重要的作用。在电化学设置中添加的支持电解质对于获得所需的电导率至关重要,但这也给估计介质极性带来了挑战。在这里,我们求助于 Lippert-Mataga-Ooshika(LMO)形式主义来估计与电化学分析相关的电解质有机溶液的 Onsager 极性。1,8-萘二酰亚胺的胺衍生物被证明是 LMO 分析的合适光探针。电解质浓度的增加会增加溶液的极性。对于低极性溶剂,这种影响更为明显。向氯仿中添加 100mM 四丁基六氟磷酸铵会导致溶液的极性超过纯二氯甲烷和 1,2-二氯乙烷的极性。相反,向乙腈和 N,N-二甲基甲酰胺等溶剂中加入相同的电解质时,观察到的极性增强则不那么显著。测量的折射率提供了一种将 Onsager 转换为 Born 极性的方法,这对于分析介质对电化学趋势的影响至关重要。本研究展示了一种强大的光学方法,包括稳态光谱和折射计,用于表征对电荷转移科学和电化学很重要的溶液性质。