An alternating copolymer-based bipolar cathode material for efficient symmetric sodium-dual-ion batteries

Abstract

Organic bipolar electrodes are capable of facilitating both n-type and p-type reactions for energy storage, typically offering high theoretical specific capacities. This article presents the design and synthesis of a new bipolar polymer cathode material, PDQZ, which is synthesized by copolymerization of phenanthroline diketone with dihydrophenazine. Dihydrophenazine works to store anions while phenanthroline diketone could store sodium ions. In a sodium-based half-cell, PDQZ demonstrates an energy density of 597 W h kg−1 and a reversible specific capacity of 318 mA h g−1 at a current density of 0.5C, with a capacity retention rate of 85% after 300 cycles. Notably, even after 4000 cycles at 10C, the capacity retention rate remains at 78%. Furthermore, symmetrical batteries are successfully assembled based on PDQZ, which shows the “ready-to-charge” characteristic, providing a discharge specific capacity of 112 mA h g−1 at 1 A g−1. More excitingly, stable cycling performance over 2000 cycles is achieved in symmetric cells, with an average decay rate as low as 0.02% per cycle. These results highlight the promising application potential of the bipolar PDQZ in energy storage, and may also shed light on future design of bipolar polymer electrode materials.

Graphical abstract: An alternating copolymer-based bipolar cathode material for efficient symmetric sodium-dual-ion batteries

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Article information

Article type
Research Article
Submitted
11 Apr 2025
Accepted
09 Jun 2025
First published
10 Jun 2025

Inorg. Chem. Front., 2025, Advance Article

An alternating copolymer-based bipolar cathode material for efficient symmetric sodium-dual-ion batteries

J. Chen, J. Qi, H. Yin, J. Tan, X. Liu, R. He, L. Zhu and F. Wu, Inorg. Chem. Front., 2025, Advance Article , DOI: 10.1039/D5QI00937E

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