Zhao C, Wang LN, Chen J, Gao M. Enhanced cycling performance of nanostructure LiFePO
4/C composites with
in situ 3D conductive networks for high power Li-ion batteries.
RSC Adv 2018;
8:41850-41857. [PMID:
35558759 PMCID:
PMC9091908 DOI:
10.1039/c8ra09124b]
[Citation(s) in RCA: 2] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/04/2018] [Accepted: 11/22/2018] [Indexed: 11/23/2022] Open
Abstract
In this work, reduced nano-sized LiFePO4 precursor particles were fabricated via a green chemistry approach without the use of any organic solvent or surfactants by accelerating the feeding speed of ferrous sulfate. After carbon coating, a 4 nm thick high graphitic degree carbon layer was deposited uniformly on the surface of reduced nano-sized LiFePO4 particles and constructed in situ 3D conductive networks among the adjacent LiFePO4 particles, as a result of an elevated self-catalytic effect of the reduced nano-size LiFePO4 particles that promoted the formation of the conductive networks. The reduced nano-size LiFePO4/C particles with in situ 3D conductive networks were shown to have an excellent high rate discharge capacity and long cycle life, delivering a high initial reversible discharge capacity of 163 mA h g-1 at 0.2C and an even high rate discharge capacity of 104 mA h g-1 at 30C. Additionally, a capacity of 101.7 mA h g-1 with a capacity retention of 97% remained after 850 cycles at 30C. This work suggests that the enhanced electrochemical performance of the LiFePO4/C composite was improved via the combination of the reduced nano-sized and 3D conductive networks, facilitating the electron transfer efficiency and diffusion of lithium ions, especially over an extended cycling performance at a high rate.
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