| Literature DB >> 29500399 |
Yulong Liu1, Jian Liu1, Jiajun Wang1, Mohammad Norouzi Banis1, Biwei Xiao1, Andrew Lushington1, Wei Xiao1,2, Ruying Li1, Tsun-Kong Sham2, Guoxian Liang3, Xueliang Sun4.
Abstract
Carbon coating is a commonly employed technique for improving the conductivity of active materials in lithium ion batteries. The carbon coating process involves pyrolysis of organic substance on lithium iron phosphate particles at elevated temperature to create a highly reducing atmosphere. This may trigger the formation of secondary phases in the active materials. Here, we observe a conductive phase during the carbon coating process of lithium iron phosphate and the phase content is size, temperature, and annealing atmosphere dependent. The formation of this phase is related to the reducing capability of the carbon coating process. This finding can guide us to control the phase composition of carbon-coated lithium iron phosphate and to tune its quality during the manufacturing process.Entities:
Year: 2018 PMID: 29500399 PMCID: PMC5834541 DOI: 10.1038/s41467-018-03324-7
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Surface conductive phase formation during carbon coating process. a Upper panel: SEM images (left side), BSE images (middle and right); lower panel: EDS mapping of surface conductive phase formation on LiFePO4. b Schematic representation of new phase formation on LiFePO4. Scale bar, 1 mm (SEM image), 200 µm (BSE), and 50 µm (right side BSE and lower panel EDS images)
Fig. 2Size-dependent properties of Fe2P phase formation. a XRD pattern of different size LFP particles after carbon coating at 900 °C. b HRTEM Fe2P phase for 60 nm LFP and 560 nm LFP annealed at 900 °C. Inset shows the SAED pattern of Fe2P phase and HRTEM images of Fe2P phase. Scale bar, 500 nm in TEM, 5 nm in HRTEM
Fig. 3Temperature dependent and atmosphere dependent properties of Fe2P phase formation. a XRD pattern of 60 nm LFP after carbon coating in Ar from 700–900 °C. b XRD pattern of 60 nm LFP after carbon coating in Ar/H2 from 600–800 °C. c TEM characterization of Fe2P phase and LFP for 60 nm LFP annealed in Ar/H2 (left side) and Ar (right side) gas at 700 °C. Inset of left picture is the diffraction pattern of Fe2P phase and HRTEM images, inset of right picture is the diffraction pattern of LFP phase and HRTEM images. Scale bar, 500 nm in TEM, 5 nm in HRTEM in the left picture. Scale bar, 200 nm in TEM, 5 nm in HRTEM in the right picture
Fig. 4Positive effect of conductive Fe2P phase in LFP. a Electrochemical properties of 560 nm LFP with different amount of Fe2P. b 60 nm LFP annealed in different atmosphere. c Schematic diagram show the positive effect of Fe2P with percolation conduction network
Fig. 5Oxygen partial chemical potential µO2. Schematic illustration of Fe2P phase formation during carbon coating process at reducing condition with regards to oxygen partial chemical potential