Enhanced Cycle Performance of Rechargeable Li-CO Batteries Using Nanostructured AMnO (A = Ni, Zn, Co) Electrocatalysts.

ACS Appl Mater Interfaces

Department of Chemical and Biological Engineering, University of New Mexico, Albuquerque, New Mexico 87131, United States.

Published: January 2025


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Article Abstract

Rechargeable Li-CO batteries face challenges of sluggish reaction kinetics and poor rechargeability. Highly efficient electrocatalysts are urgently needed to decompose the discharge product, LiCO. Mn-based transition metal oxides are regarded as promising candidates for improving the cycle performance and reaction kinetics of Li-CO batteries. Notably, morphology engineering plays a vital role in enhancing electrocatalytic performance by tuning the structure of the electrode. Herein, we adopted a morphology engineering strategy to develop nanostructured Mn-based electrocatalysts with high surface area and rich active sites. The nanostructured electrocatalysts were synthesized using a facile anodic electrodeposition method by depositing Mn-based hydroxides directly onto a carbon cloth electrode, followed by a calcination process. The electrochemical characterization showed that the Li-CO battery with Mn-based transition metal oxides AMnO (A = Ni, Zn, Co) achieves impressive cycle performance (over 150 cycles at 100 mA/g). This work not only exhibits the excellent electrocatalytic performance of Mn-based transition metal oxide but also demonstrates a general selection principle for next-generation electrocatalysts for metal-CO batteries.

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http://dx.doi.org/10.1021/acsami.4c10764DOI Listing

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