| Literature DB >> 24855459 |
Yanming Wang1, Yajing Wang1, Fei Wang1.
Abstract
Well-crystallized Li2NiTiO4 nanoparticles are rapidly synthesized by a molten salt method using a mixture of NaCl and KCl salts. X-ray diffraction pattern and scanning electron microscopic image show that Li2NiTiO4 has a cubic rock salt structure with an average particle size of ca. 50 nm. Conductive carbon-coated Li2NiTiO4 is obtained by a facile ball milling method. As a novel 4 V positive cathode material for Li-ion batteries, the Li2NiTiO4/C delivers high discharge capacities of 115 mAh g(-1) at room temperature and 138 mAh g(-1) and 50°C, along with a superior cyclability.Entities:
Keywords: Cyclability; Li-ion battery; Lithium nickel titanate; Molten salt method
Year: 2014 PMID: 24855459 PMCID: PMC4012719 DOI: 10.1186/1556-276X-9-197
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1XRD pattern of Li NiTiO .
Figure 2SEM image of Li NiTiO (a) and TEM image of Li NiTiO /C (b).
Figure 3XPS spectra of Ni 2p at different charge-discharge state.
Figure 4CV curves of the Li NiTiO /C nanocomposite.
Figure 5Electrochemical performances of the LiNiTiO/C nanocomposite. Charge-discharge curves at 0.05 C rate at room temperature (a) and 50°C (b), cycling performances at 0.05 C rate (c) and rate capability at room temperature (d). The inset in (a) shows the dQ/dV plot for the first cycle.
Figure 6XRD patterns of the LiNiTiO/C electrode. (curve a) Uncharged, (curve b) charged to 4.9 V, (curve c) discharged to 2.4 V, and (curve d) after 2 cycles, at 2.4 V.