4.6 Article

Quinone-Based Conducting Three-Dimensional Metal-Organic Framework as a Cathode Material for Lithium-Ion Batteries

Journal

JOURNAL OF PHYSICAL CHEMISTRY C
Volume 125, Issue 38, Pages 20814-20820

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcc.1c06870

Keywords

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Funding

  1. National Natural Science Foundation of China [21822506, 21503193]
  2. Natural Science Foundation of Henan province [212300410416]

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The low electronic conductivity of organic electrode materials in lithium-ion batteries has been improved by synthesizing a conducting three-dimensional metal-organic framework (3D-MOF). The (NBu4)2Fe-2(DHBQ)3 material shows high electron conductivity and superior electrochemical performance, with good reversible capacity and capacity retention under different discharge rates. These results suggest the potential application of conductive MOFs for energy conversion and storage acceleration.
The low electronic conductivity of organic electrode materials leads to sluggish reaction kinetics and inferior electrochemical performance of lithium-ion batteries. Herein, the conducting three-dimensional metal- organic framework (3D-MOF) (NBu4)(2)Fe-2(DHBQ)(3) was synthesized through a facile aqueous addition reaction. The intramolecular charge delocalization through the robust p-d conjugation between DHBQ ligands and Fe3+ centers is favorable for long-range electron migration, resulting in high electronic conductivity of the 3D hollow (NBu4)(2)Fe-2(DHBQ)(3). When applied as the cathode material, (NBu4)(2)Fe-2(DHBQ)(3) delivers a reversible capacity of 137.2 mA h g(-1) at 10 mA g(-1) and 95.2 mA h g(-1) at 1000 mA g(-1). The capacity retention reached up to 91.4% after 350 cycles at 500 mA g(-1) with about 100% Coulombic efficiency. Fourier-transform infrared spectroscopy and X-ray photoelectron spectroscopy tests reveal that the conjugated carbonyls of DHBQ organic linkers contribute the redox centers and undergo a 5ereaction mechanism during charge and discharge processes. These excellent electrochemical performances could be attributed to the fast electron/ion migration kinetics because of high electronic conductivity and the hollow structure of (NBu4)(2)Fe-2(DHBQ)(3). All the positive results could facilitate the implementation of conductive MOFs for energy conversion and storage acceleration.

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