4.8 Article

Molecularly Compensated Pre-Metallation Strategy for Metal-Ion Batteries and Capacitors

期刊

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION
卷 60, 期 31, 页码 17070-17079

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202103569

关键词

batteries; capacitors; cathode additive; electrolysis; organic electrochemistry

资金

  1. National Key Research and Development Program of China [2018YFC1901605]
  2. National Natural Science Foundation of China [52004338]
  3. Hunan Provincial Natural Science Foundation of China [2020JJ5696]
  4. Science, and Technology Innovation Program of Hunan Province [2020RC4005, 2019RS1004]

向作者/读者索取更多资源

A sacrificial cathode additive as a pre-metallation method has been used to ensure adequate metal sources for advanced energy storage devices, but struggles with controlling the decomposition potential of the additive. A molecularly compensated pre-metallation strategy has been achieved through Kolbe electrolysis, manipulating the electrochemical oxidation potential of a metal carboxylate through the bonding energy of the oxygen-metal moiety.
The use of a sacrificial cathode additive as a pre-metallation method could ensure adequate metal sources for advanced energy storage devices. However, this pre-metallation technique suffers from the precise regulation of decomposition potential of additive. Herein, a molecularly compensated pre-metallation (Li/Na/K) strategy has been achieved through Kolbe electrolysis, in which the electrochemical oxidation potential of a metal carboxylate is manipulated by the bonding energy of the oxygen-metal (O-M) moiety. The electrondonating effect of the substituent and the low charge density of the cation can dramatically weaken the O-M bond strength, further bringing out the reduced potential. Thus, sodium acetate exhibits a superior pre-sodiation feature for sodium-ion battery accompanied with a large irreversible specific capacity of 301.8 mAhg(-1), remarkably delivering 70.6% enhanced capacity retention in comparison to the additive-free system after 100 cycles. This methodology has been extended to construct a high-performance lithium-ion battery and a lithium/sodium/potassium-ion capacitor.

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