2019 AIChE Annual Meeting

(353h) Heterostructure-Promoted Oxygen Electrocatalysis Enables Re-Chargeable Zinc-Air Battery with Neutral Aqueous Electrolyte

Authors

Zhang, Z. - Presenter, Michigan Technological University
Zhang, S., University of Virginia
An, L., Lanzhou University
Xi, P., Lanzhou University
Neutral aqueous zinc-air batteries (ZABs) are an emerging type of energy devices with substantially elongated lifetime and improved recyclability compared to conventional alkaline ZABs. However, its development is impeded by the lack of robust bifunctional catalyst at the air electrode for the oxygen evolution reaction (OER) and the oxygen reduction reaction (ORR). Here, we report the controlled synthesis of NiFe2O4/FeNi2S4 heterostructured nanosheets (HNSs) that are highly efficient in catalyzing OER and ORR and therefore enabling neutral rechargeable ZABs. Associated with the formation of abundant oxide/sulfide interfaces over NiFe2O4/FeNi2S4 HNSs’ surfaces, the catalyst’s oxygen binding energy can be effectively tuned to enhance the OER and ORR activities, as revealed by the density functional theory (DFT) calculations. In 0.2 M phosphate buffer solution (PBS), the optimized NiFe2O4/FeNi2S4 HNSs present an excellent oxygen electrocatalytic activity and stability, with much lower OER and ORR overpotentials than single component FeNi2S4 or NiFe2O4, and with negligible performance decay in accelerated durability testing. When used as an air electrode, the NiFe2O4/FeNi2S4 HNS can deliver a power density of 44.4 mW cm-2 and a superior cycling stability (only 0.6% decay after 900 cycles at 0.5 mA cm-2), making the resultant ZAB being the most efficient and robust one with neutral aqueous electrolyte reported to date. This work highlights the essential function of heterostructure interface in oxygen electrocatalysis, opening a new avenue to advanced neutral metal-air batteries.