4.8 Article

Balance cathode-active and anode-active groups in one conjugated polymer towards high-performance all-organic lithium-ion batteries

Journal

NANO ENERGY
Volume 86, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.nanoen.2021.106055

Keywords

Energy storage; Lithium-ion batteries; Organic electrodes; Full batteries; High capacity

Funding

  1. Ministry of Science and Technology of China (MoST) [2016YFA0200200]
  2. National Natural Science Foundation of China (NSFC) of China [51633002]
  3. 111 Project [B12015]

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Balancing/maximizing abundant cathode-active groups (C=O, C=N) and anode-active groups (C=C), we designed and reported a polymer named Poly-BQ1, which can be used as both cathode and anode materials for high-performance all-organic symmetric Lithium-ion battery. By optimizing integration of redox-active C=O, C=N and C=C groups in a stable conjugated backbone and minimizing redox-inactive units, the all-organic battery using this single material exhibits the highest capacity (351.5 mA h g-1 at 50 mA g-1) among all previously reported all-organic batteries, with remarkable cycling stability (99.96% retention per cycle up to 400 cycles) and rate performance (203.4 mA h g-1 at 1 A g-1).
Organic electrode materials are promising for future rechargeable batteries owing to their potential high capacity, tunable structure, flexibility and sustainability. Thus, developing high-performance all-organic batteries is highly demanded. But so far it is still a great challenge to achieve simultaneously such desired capacities and cycling stability, particularly for the case of all-organic symmetric batteries. Here, we design and report a polymer, named Poly-BQ1, which can be used as both cathode and anode materials for high-performance allorganic symmetric Lithium-ion battery. Such a two-fold electrode material was designed and optimized by balancing/maximizing abundant cathode-active groups (C=O, C=N) and anode-active groups (C=C) in one stable conjugated polymer for both the purposes of achieving high capacity and cycling stability. Thus, owing to optimized integration of redox-active C=O, C=N and C=C groups in a stable conjugated backbone and minimized redox-inactive units, the all-organic battery using this single material exhibits the highest capacity (351.5 mA h g-1 at 50 mA g-1) among all previously reported all-organic batteries with also remarkable cycling stability (99.96% retention per cycle up to 400 cycles) and rate performance (203.4 mA h g-1 at 1 A g-1).

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