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Fast‐Charging Zinc‐Air Batteries with Stable Bifunctional Oxygen Electrocatalysis of Mo‐Induced Nanodefective Mo─Co/N─C Catalyst

Yan Zhang, Xiaoyue Ma, Zhendong Cheng, Jingwen Wang, Guobin Wen, Lin Yang, Zhengyu Bai

2024Advanced Functional Materials39 citationsDOI

Abstract

Abstract Fast‐charging technology plays a pivotal role in propelling the commercialization of zinc‐air batteries (ZABs). While the lifetime of ZABs under fast‐charging is severely shortened by the abundant O 2 bubbles and the deactivation of the cathode catalysts. Herein, a defective Mo─Co / N─C electrocatalyst is presented with Co nanoparticles and molybdenum‐oxo subnano clusters by pyrolyzing the Lindqvist polyoxometalate incorporated ZIF‐67 precursor. The crystalline defects are exacerbated by doping the polyoxometalate into the pores of ZIF‐67. Furthermore, the accessibility of the pore defects is increased by Mo‐leaching during the pre‐activation. These accessible pore defects effectively prevent the exfoliation of catalysts from the support under the attack of O 2 bubbles, and improve the electrolyte penetration. Besides, the pore defects offer numerous active sites for the electrocatalytic reactions, resulting in an active and stable Mo─Co / N─C catalyst. Hence, such a Mo─Co / N─C electrocatalyst achieves a long lifetime of 1538 h at 5 mA cm −2 , and a long lifetime of 641 h under a fast charge of 50 mA cm −2 in the homemade ZAB. The unique components and operational mechanisms propel scientists to portray splendid blueprints for durable fast‐charging ZABs for potential industrial applications.

Topics & Concepts

ElectrocatalystMaterials scienceCatalysisPolyoxometalateBifunctionalChemical engineeringMolybdenumNanoparticleElectrolyteNanotechnologyElectrochemistryElectrodeChemistryMetallurgyOrganic chemistryPhysical chemistryEngineeringElectrocatalysts for Energy ConversionAdvanced battery technologies researchPolyoxometalates: Synthesis and Applications