Wang Yufei, Li Mingyang, Ren Hang
Department of Chemistry, The University of Texas at Austin, 105 E 24th Street, Austin, Texas 78712, United States.
ACS Meas Sci Au. 2022 Apr 14;2(4):304-308. doi: 10.1021/acsmeasuresciau.2c00012. eCollection 2022 Aug 17.
The advancement in nanoscale electrochemical tools has offered the opportunity to better understand heterogeneity at electrochemical interfaces. Scanning electrochemical cell microscopy (SECCM) has been increasingly used for revealing local kinetics and the distribution of active sites in electrocatalysis. Constant-contact scanning and hopping scanning are the two commonly used modes. The former is intrinsically faster, whereas the latter enables full voltammetry at individual locations. Herein, we revisit a less used mode that combines the advantages of hopping and constant-contact scan, resulting in a faster voltammetric mapping. In this mode, the nanodroplet cell in SECCM maintains contact with the surface during the scanning and makes intermittent pauses for local voltammetry. The elimination of frequent retraction and approach greatly increases the speed of mapping. In addition, correction can be readily applied to the voltammetry, resulting in more accurate measurements of the electrode kinetics. This scanning mode is demonstrated in the oxidation of a ferrocene derivative on HOPG and hydrogen evolution reaction (HER) on polycrystalline Pt, serving as model systems for outer-sphere and inner-sphere electron transfer reactions, respectively. While the kinetics of the inner-sphere reaction is consistent spatially, heterogeneity is observed for the kinetics of HER, which is correlated with the crystal orientation of Pt.
纳米级电化学工具的进步为更好地理解电化学界面的异质性提供了机会。扫描电化学池显微镜(SECCM)越来越多地用于揭示电催化中的局部动力学和活性位点分布。恒接触扫描和跳跃扫描是两种常用模式。前者本质上更快,而后者能够在各个位置进行全伏安法测量。在此,我们重新审视一种较少使用的模式,该模式结合了跳跃扫描和恒接触扫描的优点,从而实现更快的伏安映射。在这种模式下,SECCM中的纳米液滴池在扫描过程中与表面保持接触,并间歇性暂停以进行局部伏安法测量。消除频繁的缩回和接近操作大大提高了映射速度。此外,可以很容易地对伏安法进行校正,从而更准确地测量电极动力学。这种扫描模式在HOPG上二茂铁衍生物的氧化以及多晶Pt上的析氢反应(HER)中得到了验证,分别作为外层和内层电子转移反应的模型体系。虽然内层反应的动力学在空间上是一致的,但观察到HER动力学存在异质性,这与Pt的晶体取向相关。