4.8 Article

Novel Lamellar Tetrapotassium Pyromellitic Organic for Robust High-Capacity Potassium Storage

期刊

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION
卷 60, 期 21, 页码 11835-11840

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202103052

关键词

battery; carboxyls; organic electrode; potassium; tetrapotassium pyromellitic

资金

  1. Key Area Research and Development Program of Guangdong Province [2019B090914003]
  2. National Natural Science Foundation of China [51822210, 51972329, 52061160484, 22005330]
  3. China Postdoctoral Science Foundation [2020M672871]
  4. Shenzhen Science and Technology Planning Project [JCYJ20190807171803813, JCYJ20200109115624923]
  5. Science and Technology Planning Project of Guangdong Province [2019TX05L389, 2018A050506066]

向作者/读者索取更多资源

The study focuses on a layered organic compound for enhanced K+ ion storage capacity and stability. Through a specific design strategy, high capacity and excellent cycling stability have been achieved.
Redox-active organics are investigation hotspots for metal ion storage due to their structural diversity and redox reversibility. However, they are plagued by limited storage capacity, sluggish ion diffusion kinetics, and weak structural stability, especially for K+ ion storage. Herein, we firstly reported the lamellar tetrapotassium pyromellitic (K4PM) with four active sites and large interlayer distance for K+ ion storage based on a design strategy, where organics are constructed with the small molecular mass, multiple active sites, fast ion diffusion channels, and rigid conjugated pi bonds. The K4PM electrode delivers a high capacity up to 292 mAh g(-1) at 50 mA g(-1), among the best reported organics for K+ ion storage. Especially, it achieves an excellent rate capacity and long-term cycling stability with a capacity retention of approximate to 83 % after 1000 cycles. Incorporating in situ and ex-situ techniques, the K+ ion storage mechanism is revealed, where conjugated carboxyls are reversibly rearranged into enolates to stably store K+ ions. This work sheds light on the rational design and optimization of organic electrodes for efficient metal ion storage.

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