Department of Chemistry, Chungbuk National University, Cheongju 28644, South Korea.
Anal Chem. 2021 Dec 21;93(50):16915-16921. doi: 10.1021/acs.analchem.1c04071. Epub 2021 Dec 3.
In this study, we report the new application of single nanodroplet electrochemistry to in situ monitor the interfacial transfer kinetics of electroactive species across liquid/liquid interface. Interfacial kinetic information is crucial in drug delivery and membrane transport. However, interfacial information has been mainly studied thermodynamically, such as partition coefficient, which could not manifest a speed of transfer. Herein, we measure the phase-transfer kinetic constant via the steady-state electrochemistry of an extracted redox species in a single nanodroplet. The redox species were transferred from the continuous oil phase to the water nanodroplet by partition equilibrium. The transferred redox species are selectively electrolyzed within the droplet when the droplet contacts with an ultramicroelectrode, while the electrochemical reaction of the redox species outside the droplet (i.e., organic solvent) is effectively suppressed by adjusting the electrolyte composition. The redox species in the water droplets can quickly attain a steady state during electrolysis owing to an extensive mass transfer by radial diffusion, and the steady-state current can be analyzed to obtain kinetic information with help from the finite-element method. Finally, a quick calculation method is suggested to estimate the kinetic constant of phase transfer without simulation.
在本研究中,我们报告了单纳米液滴电化学的新应用,用于原位监测电活性物质在液/液界面处的界面传递动力学。界面动力学信息在药物输送和膜传输中至关重要。然而,界面信息主要从热力学角度进行研究,例如分配系数,它无法表现出传递的速度。在此,我们通过在单个纳米液滴中提取的氧化还原物种的稳态电化学来测量相间转移动力学常数。氧化还原物种通过分配平衡从连续油相转移到水纳米液滴中。当液滴与超微电极接触时,转移的氧化还原物种在液滴内被选择性地电解,而通过调整电解质组成,可以有效地抑制液滴外(即有机溶剂)的氧化还原物种的电化学反应。由于径向扩散的广泛传质,水相中的氧化还原物种在电解过程中可以迅速达到稳态,并且可以通过有限元法分析稳态电流来获得动力学信息。最后,提出了一种无需模拟即可估计相间转移动力学常数的快速计算方法。