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Exploring the Interfacial Chemistry between Zinc Anodes and Aqueous Electrolytes via an In Situ Visualized Characterization System

Xunzhu Zhou, Yong Lü, Qiu Zhang, Licheng Miao, Kai Zhang, Zhenhua Yan, Fujun Li, Jun Chen

2020ACS Applied Materials & Interfaces92 citationsDOI

Abstract

Direct monitoring of dendrite growth, hydrogen evolution, and surface passivation can enrich the chemical and morphological understanding of the unstable Zn/electrolyte interface and provide guidelines for rational design of Zn anodes; however, the on-line observation with high precision is hitherto lacking. Herein, we present a real-time comprehensive characterization system, including in situ atomic force microscopy, optical microscopy, and electrochemical quartz crystal microbalance (referred to as the “3M” system), to provide multiscale views on the semisphere nuclei and growth of bump-like dendrites and the potential-dependent chemical and morphological structures of passivated products in a mild acidic electrolyte. It is revealed that the poor interfacial properties can be attributed to the sparse nucleation sites and direct contact of Zn with the electrolyte. The 3M system further visualizes and confirms that the additive polyethylene glycol acts as a Zn2+ distribution promoter and physical barrier and merits stable electrochemical performance.

Topics & Concepts

ElectrolyteCharacterization (materials science)PassivationMaterials scienceNucleationElectrochemistryQuartz crystal microbalanceIn situAqueous solutionChemical engineeringAnodeDendrite (mathematics)ZincNanotechnologyElectrodeChemistryMetallurgyPhysical chemistryOrganic chemistryGeometryLayer (electronics)AdsorptionMathematicsEngineeringAdvanced battery technologies researchAdvanced Battery Technologies ResearchAdvanced Battery Materials and Technologies