Zhang Yanyan, Tang Jilin, Ni Zhigang, Zhao Yao, Jia Feifei, Luo Qun, Mao Lanqun, Zhu Zihua, Wang Fuyi
Beijing National Laboratory for Molecular Sciences, National Centre for Mass Spectrometry in Beijing, CAS Key Laboratory of Analytical Chemistry for Living Biosystems, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
J Phys Chem Lett. 2021 Jun 10;12(22):5279-5285. doi: 10.1021/acs.jpclett.1c01134. Epub 2021 Jun 1.
The chemisorption of an electrolyte species on electrode surfaces is ubiquitous and affects the dynamics and mechanism of various electrochemical reactions. Understanding of the chemical structure and property of the resulting electrical double layer is vital but limited. Herein, we operando probed the electrochemical interface between a gold electrode surface and a common electrolyte, phosphate buffer, using our newly developed in situ liquid secondary ion mass spectrometry. We surprisingly found that, on the positively charged gold electrode surface, sodium cations were anchored in the Stern layer in a partially dehydrated form by a formation of compact ion pairs with the accumulated phosphate anions. The resulting strong adsorption phase was further revealed to retard the electro-oxidation reaction of ascorbate. This finding addressed one major gap in the fundamental science of electrode-electrolyte interfaces, namely, where and how cations reside in the double layer to impose effects on electrochemical reactions, providing insights into the engineering of better electrochemical systems.
电解质物种在电极表面的化学吸附普遍存在,并影响各种电化学反应的动力学和机理。理解由此产生的双电层的化学结构和性质至关重要,但却很有限。在此,我们使用新开发的原位液体二次离子质谱,对金电极表面与常见电解质磷酸盐缓冲液之间的电化学界面进行了原位探测。我们惊人地发现,在带正电的金电极表面,钠离子通过与积累的磷酸根阴离子形成紧密离子对,以部分脱水的形式锚定在斯特恩层中。结果表明,由此产生的强吸附相进一步阻碍了抗坏血酸的电氧化反应。这一发现填补了电极 - 电解质界面基础科学中的一个主要空白,即阳离子在双层中何处以及如何存在以对电化学反应产生影响,为设计更好的电化学系统提供了见解。