Bimetallic RuNi Electrocatalyst Coated MWCNTs Cathode for an Efficient and Stable Li−CO2 and Li−CO2 Mars Batteries Performance with Low Overpotential

Author:

Naik Keerti M.1ORCID,Chourasia Ankit Kumar1ORCID,Shavez Mohd1,Sharma Chandra S.1ORCID

Affiliation:

1. Creative & Advanced Research Based On Nanomaterials (CARBON) Laboratory Department of Chemical Engineering Indian Institute of Technology Hyderabad Kandi-502285 Sangareddy Telangana India

Abstract

AbstractRechargeable lithium‐CO2 (Li−CO2) batteries are an attractive energy storage technology that can reduce fossil fuel usage and limit the adverse environmental impact of CO2 emissions. However, the high charge overpotential, unstable cycling, and incomplete understanding of the electrochemical process limit its advancement for practical applications. Herein, we develop a Li−CO2 battery by designing a bimetallic ruthenium‐nickel catalyst onto multi‐walled carbon nanotubes (RuNi/MWCNTs) catalyst as cathode by solvothermal method, which exhibits a lower overpotential of 1.15 V and a discharge capacity of 15,165 mAh g−1 with outstanding coulombic efficiency of 97.4 %. The battery can also operate at high rates and have a stable cycle of more than 80 cycles at a current density of 200 mA g−1 with a fixed 500 mAh g−1 capacity. Furthermore, Mars exploration is made feasible with the Li−CO2 Mars battery composed of the RuNi/MWCNTs as cathode catalyst, which performs very similarly to that of pure CO2 atmosphere. This approach may simplify the process of developing high‐performance Li−CO2 batteries to achieve carbon negativity on Earth and for future interplanetary Mars missions.

Funder

Dipartimento di Scienze e Tecnologie, Università degli Studi del Sannio

Science and Engineering Research Board

Publisher

Wiley

Subject

General Energy,General Materials Science,General Chemical Engineering,Environmental Chemistry

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