With a recent increase in interest in metal-gas batteries, the lithium-carbon dioxide cell has attracted considerable attention because of its extraordinary carbon dioxide-capture ability during the discharge process and its potential application as a power source for Mars exploration. However, owing to the stable lithium carbonate discharge product, the cell enables operation only at low current densities, which significantly limits the application of lithium-carbon dioxide batteries and effective carbon dioxide-capture cells. Here, we investigate a high-performance lithium-carbon dioxide cell using a quinary molten salt electrolyte and ruthenium nanoparticles on the carbon cathode. The nitrate-based molten salt electrolyte allows us to observe the enhanced carbon dioxide-capture rate and the reduced discharge-charge over-potential gap with that of conventional lithium-carbon dioxide cells. Furthermore, owing to the ruthernium catalyst, the cell sustains its performance over more than 300 cycles at a current density of 10.0 A g and exhibits a peak power density of 33.4 mW cm.
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http://dx.doi.org/10.1038/s41467-019-14121-1 | DOI Listing |
J Colloid Interface Sci
December 2024
National and Local Joint Engineering Research Center for Lithium-ion Batteries and Materials Preparation Technology, Key Laboratory of Advanced Battery Materials of Yunnan Province, Faculty of Metallurgical and Energy Engineering, Kunming University of Science and Technology, Kunming 650093, China. Electronic address:
Due to the high theoretical energy density, lithium-carbon dioxide (Li-CO) batteries provide unique advantages when using CO to generate electricity. However, the issues with lithium dendrite generated by uneven deposition and quick cathode passivation continue to impede the development of Li-CO batteries. In this work, a Janus separator with dual functionalities is created using an in-situ growth and hydrothermal technique.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2024
Department of Chemistry, City University of Hong Kong, Kowloon, Hong Kong, SAR 999077, China.
Adv Mater
October 2024
Tsinghua-Berkeley Shenzhen Institute & Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, 518055, China.
Catalytic reactions mainly depend on the adsorption properties of reactants on the catalyst, which provides a perspective for the design of reversible lithium-carbon dioxide (Li-CO) batteries including CO reduction (CORR) and CO evolution (COER) reactions. However, due to the complex reaction process, the relationship between the adsorption configuration and CORR/COER catalytic activity is still unclear in Li─CO batteries. Herein, taking CoS as a model system, nickel (Ni substitution in the tetrahedral site to activate cobalt (Co) atom for forming multiatom catalytic domains in NiCoS is utilized.
View Article and Find Full Text PDFAdv Mater
September 2024
College of Chemistry and Chemical Engineering, Central South University, Changsha, 410006, China.
Lithium carbon dioxide (Li-CO) batteries, noted for their high discharge voltage of approximately 2.8 V and substantial theoretical specific energy of 1876 Wh kg, represent a promising avenue for new energy sources and CO emission reduction. However, the practical application of these batteries faces significant hurdles, particularly at high current densities and over extended cycle lives, due to their complex reaction mechanisms and slow kinetics.
View Article and Find Full Text PDFSmall
October 2024
School of Chemistry and Chemical Engineering, Southeast University, Nanjing, 211189, China.
Lithium-carbon dioxide (Li-CO) battery represents a high-energy density energy storage with excellent real-time CO enrichment and conversion, but its practical utilization is hampered by the development of an excellent catalytic cathode. Here, the synergistic catalytic strategy of designing CoRu bimetallic active sites achieves the electrocatalytic conversion of CO and the efficient decomposition of the discharge products, which in turn realizes the smooth operation of the Li-CO battery. Moreover, obtained support based on metal-organic frameworks precursors facilitates the convenient diffusion and adsorption of CO, resulting in higher reaction concentration and lower mass transfer resistance.
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