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Tuning the number of redox groups in the cathode toward high rate and long lifespan zinc-ion batteries.

Yanjun ShiZhihui XuPengcheng WangHaiguang GaoWanjiao HeYanan SunYucheng HuangJuan XuJianyu Cao
Published in: Chemical communications (Cambridge, England) (2023)
We synthesized a small molecule, DBPTO, and used it as a cathode material in aqueous zinc-ion batteries. DBPTO presented a high reversible capacity of 382 mA h g -1 at 0.05 A g -1 and a long lifespan of over 60 000 cycles. In the same π-conjugated skeleton, DBPTO (containing four CO and two CN groups) shows a narrower energy gap than TAPQ (containing CO and four CN groups), which leads to the superior rate and cycling performance of DBPTO. The mechanism of charge storage of DBPTO also revealed that H + and Zn 2+ coordinated with the CO and CN sites by ex situ structural characterization and DFT calculations. Our results provide new insights into the design of organic cathodes with a high rate capability and long lifespan. Further efforts will focus on a deeper understanding of the charge storage mechanism.
Keyphrases
  • ion batteries
  • small molecule
  • density functional theory
  • oxide nanoparticles
  • photodynamic therapy
  • solar cells
  • molecular dynamics simulations
  • ionic liquid
  • single cell
  • heavy metals
  • protein protein