School of Chemistry and Chemical Engineering, State Key Laboratory of Analytical Chemistry for Life Science, Nanjing University, Nanjing, 210093, China.
Angew Chem Int Ed Engl. 2017 Feb 1;56(6):1629-1633. doi: 10.1002/anie.201611235. Epub 2017 Jan 9.
Bipolar electrochemistry is based on the gradient distribution of free-electron density along an electrically isolated electrode, which causes a positive electrode potential at one end and a negative potential at the other, allowing for wide applications in analytical chemistry and materials science. To take full advantage of its wireless and high-throughput features, various types of optical probes, such as pH indicators and fluorescence and electrochemiluminescence reagents, have often been used to indirectly monitor the interfacial electron transfer through chromogenic or fluorogenic reactions. Herein, we report the first probe-free imaging approach that can directly visualize the distribution of the interfacial potential in bipolar electrodes, providing essential information for the validation and development of the theory and applications of bipolar electrochemistry. This approach is based on the sensitive dependence of surface plasmon resonance imaging on the local electron density in the electrode, which enables the direct mapping of potential with a spatial resolution close to the optical diffraction limit, a temporal resolution of 50 ms, and a sensitivity of 10 mV. In addition, in contrast to previous optical readouts that relied on faradaic reactions, the present work achieved the impedance-based measurements under non-faradaic conditions. It is anticipated that this technique will greatly expand the application of bipolar electrochemistry as a platform for chemical and biosensing.
双极电化学基于自由电子密度沿着电隔离电极的梯度分布,这导致一端为正电极电位,另一端为负电位,从而在分析化学和材料科学中有广泛的应用。为了充分利用其无线和高通量的特点,各种类型的光学探针,如 pH 指示剂和荧光和电化学发光试剂,通常被用于通过显色或荧光反应间接监测界面电子转移。在此,我们报道了首例无探针成像方法,该方法可直接可视化双极电极中界面势的分布,为双极电化学的理论和应用的验证和发展提供了重要信息。该方法基于表面等离子体共振成像对电极中局部电子密度的敏感依赖性,使我们能够直接以接近光学衍射极限的空间分辨率、50ms 的时间分辨率和 10mV 的灵敏度对电势进行映射。此外,与以前依赖于法拉第反应的光学读出方法相比,本工作在非法拉第条件下实现了基于阻抗的测量。预计这项技术将极大地扩展双极电化学作为化学和生物传感平台的应用。