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Ultrahigh discharge voltage plateau of 3.2 V achieved in Li-CO2 batteries using iron polyphthalocyanine.

Created on 03 Oct 2026

Authors

Ning Zhao, Yi Zhang, Li-Min Liu, Han-Qi Zhang, Zheng Meng, Shu-Jiang Ding, Qiang Wang, Xiao-Fei Hu

Published in

Science advances. Volume 12. Issue 40. Pages eaei5080. Oct 02, 2026. Epub Oct 02, 2026.

Abstract

Rechargeable lithium-carbon dioxide (Li-CO2) batteries offer great potential for greenhouse gas use and high-energy-density storage. However, their practical application is hindered by the formation of a thermodynamically stable Li2CO3 (lithium carbonate) product that is hard to decompose during charging. Highly crystalline and conductive reticular material iron polyphthalocyanine (pFeIIPc) as a solid-state redox mediator into Li-CO2 batteries tailors the cathode reaction pathway, enabling stable Li2C2O4 (lithium oxalate) generation and an extraordinary discharge plateau of 3.2 V beyond the theoretical limit. Beyond delivering an ultrahigh discharge capacity of 28,790 milliampere-hours per gram and reversible cyclability over 1400 hours (cutoff capacity of 1000 milliampere-hours per gram) at 100 milliamperes per gram, the Li-CO2 batteries exhibit excellent temperature adaptability (-40 to 80°C). The Li-CO2 pouch cells using pFeIIPc as the solid-state redox mediator achieve a high energy density of 678 watt-hours per kilogram on the basis of total device mass and maintain reversible cycling for 251 hours. Our work pioneers a promising pathway toward practical high-efficiency Li-CO2 batteries.

PMID:
42826208
Bibliographic data and abstract were imported from PubMed on 03 Oct 2026.

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