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石墨烯电极上固体电解质界面形成过程中锂通量与电子转移反应性的协同映射。

Coordinated mapping of Li flux and electron transfer reactivity during solid-electrolyte interphase formation at a graphene electrode.

作者信息

Gossage Zachary T, Hui Jingshu, Sarbapalli Dipobrato, Rodríguez-López Joaquín

机构信息

Department of Chemistry, University of Illinois at Urbana-Champaign, 600 S Mathews Ave., Urbana, Illinois 61801, USA.

出版信息

Analyst. 2020 Apr 7;145(7):2631-2638. doi: 10.1039/c9an02637a. Epub 2020 Feb 26.

Abstract

Interphases formed at battery electrodes are key to enabling energy dense charge storage by acting as protection layers and gatekeeping ion flux into and out of the electrodes. However, our current understanding of these structures and how to control their properties is still limited due to their heterogenous structure, dynamic nature, and lack of analytical techniques to probe their electronic and ionic properties in situ. In this study, we used a multi-functional scanning electrochemical microscopy (SECM) technique based on an amperometric ion-selective mercury disc-well (HgDW) probe for spatially-resolving changes in interfacial Li during solid electrolyte interphase (SEI) formation and for tracking its relationship to the electronic passivation of the interphase. We focused on multi-layer graphene (MLG) as a model graphitic system and developed a method for ion-flux mapping based on pulsing the substrate at multiple potentials with distinct behavior (e.g. insertion-deinsertion). By using a pulsed protocol, we captured the localized uptake of Li at the forming SEI and during intercalation, creating activity maps along the edge of the MLG electrode. On the other hand, a redox probe showed passivation by the interphase at the same locations, thus enabling correlations between ion and electron transfer. Our analytical method provided direct insight into the interphase formation process and could be used for evaluating dynamic interfacial phenomena and improving future energy storage technologies.

摘要

电池电极处形成的界面对于实现能量密集型电荷存储至关重要,它作为保护层并控制离子进出电极的通量。然而,由于其结构的异质性、动态性质以及缺乏原位探测其电子和离子性质的分析技术,我们目前对这些结构以及如何控制其性质的理解仍然有限。在本研究中,我们使用了一种基于安培离子选择性汞盘微池(HgDW)探针的多功能扫描电化学显微镜(SECM)技术,用于在固体电解质界面(SEI)形成过程中空间分辨界面Li的变化,并追踪其与界面电子钝化的关系。我们专注于多层石墨烯(MLG)作为模型石墨系统,并开发了一种基于在具有不同行为(例如插入-脱插)的多个电位下对基底进行脉冲的离子通量映射方法。通过使用脉冲协议,我们捕获了在形成的SEI处和嵌入过程中Li的局部摄取,在MLG电极边缘创建了活性图。另一方面,氧化还原探针显示在相同位置被界面钝化,从而实现了离子和电子转移之间的关联。我们的分析方法为界面形成过程提供了直接的见解,可用于评估动态界面现象并改进未来的能量存储技术。

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