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Abstract:
Fe-Mn based Li-rich cathode materials are regarded as one of the most promising cathode materials for their low cost and high energy density but possess drawbacks such as high oxygen release, low conduc-tivity, and slow kinetics for lithium-ion transport. To address these issues, herein, we proposed a high-valance cations Nb5+ doping strategy and synthesized a series of Li-1.26[Fe0.22Mn0.52](1-x)Nb0.74xO2 (x = 0, 0.02, 0.03, 0.04) cathode materials. Using a combination of experimental approaches and density func-tional theory (DFT) calculations, we found that the doped samples presented expanded interlayer spacing for Li-ion migration and better structural stability due to the large ionic radius of Nb5+ and the strength-ened Nb-O bond. Moreover, Nb doping could not only decrease the band gap and the density of states of the O 2p band but also contribute extra electrons to surrounding O atoms, thereby enhancing electronic conductivity and stabilizing lattice oxygen. Benefit from the underlying mechanisms mentioned above, the Nb-0.022 sample possessed a higher Coulombic efficiency (71.1 vs 65.0%) at 0.2 C, showing more stable cycling performance (90.4 vs 67.7 mAh g(-1)) at 0.5 C and rate capability. These favorable results can assist in the development of Fe-Mn based Li-rich cathode materials with excellent electrochemical properties. (C) 2021 Elsevier Ltd. All rights reserved.
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ELECTROCHIMICA ACTA
ISSN: 0013-4686
Year: 2022
Volume: 404
6 . 6
JCR@2022
6 . 6 0 0
JCR@2022
ESI Discipline: CHEMISTRY;
ESI HC Threshold:53
JCR Journal Grade:2
CAS Journal Grade:2
Cited Count:
WoS CC Cited Count: 14
SCOPUS Cited Count: 14
ESI Highly Cited Papers on the List: 0 Unfold All
WanFang Cited Count:
Chinese Cited Count:
30 Days PV: 11
Affiliated Colleges: