Effects of film-forming additive on stability of electrode and cycling performance of LiFePO4/graphite cell at elevated temperature were studied. Two 18650 cells with and without VC additive were investigated by galva...Effects of film-forming additive on stability of electrode and cycling performance of LiFePO4/graphite cell at elevated temperature were studied. Two 18650 cells with and without VC additive were investigated by galvanostatic cycling, electrochemical impedance spectroscopy, scanning electron microscopy, energy-dispersive X-ray analysis and Raman spectroscopy. The results show that in the presence of VC additive, dissolution of Fe from LiFePO4 material is greatly depressed and stability of graphite structure is improved; the additive can not only reduce reaction of electrolyte on surface of LiFePO4 electrode but also suppress reduction of solvent and thickening of the solid electrolyte interface (SEI) layer on graphite surface. Electrolyte with VC is considered to be a good candidate for improving cycling performance of the LiFePOa/graphite cell at elevated temperature.展开更多
Based on the method of in situ polymerization synthesis combined with two-step sinter- ing process, LiFel-xVx(PO4)(3-y)/3Fy/C was prepared. The effects of V and F co-doping on the structure, morphology, and electr...Based on the method of in situ polymerization synthesis combined with two-step sinter- ing process, LiFel-xVx(PO4)(3-y)/3Fy/C was prepared. The effects of V and F co-doping on the structure, morphology, and electrochemical performances of LiFePO4/C were in- vestigated by X-ray diffraction, Fourier transform infrared spectra, scanning electron mi- croscope, charge/discharge tests, and electrochemical impedance spectroscopy, respectively. The results indicated that the V and F co-doping did not destroy the olivine structure of LiFePO4/C, but it can stabilize the crystal structure, decrease charge transfer resistance, enhance Li ion diffusion velocity, further improve its cycling and high-rate capabilities of LiFePO4/C.展开更多
基金Project(2007BAE12B01)supported by the National Key Technology Research and Development Program of ChinaProject(20803095)supported by the National Natural Science Foundation of China
文摘Effects of film-forming additive on stability of electrode and cycling performance of LiFePO4/graphite cell at elevated temperature were studied. Two 18650 cells with and without VC additive were investigated by galvanostatic cycling, electrochemical impedance spectroscopy, scanning electron microscopy, energy-dispersive X-ray analysis and Raman spectroscopy. The results show that in the presence of VC additive, dissolution of Fe from LiFePO4 material is greatly depressed and stability of graphite structure is improved; the additive can not only reduce reaction of electrolyte on surface of LiFePO4 electrode but also suppress reduction of solvent and thickening of the solid electrolyte interface (SEI) layer on graphite surface. Electrolyte with VC is considered to be a good candidate for improving cycling performance of the LiFePOa/graphite cell at elevated temperature.
文摘Based on the method of in situ polymerization synthesis combined with two-step sinter- ing process, LiFel-xVx(PO4)(3-y)/3Fy/C was prepared. The effects of V and F co-doping on the structure, morphology, and electrochemical performances of LiFePO4/C were in- vestigated by X-ray diffraction, Fourier transform infrared spectra, scanning electron mi- croscope, charge/discharge tests, and electrochemical impedance spectroscopy, respectively. The results indicated that the V and F co-doping did not destroy the olivine structure of LiFePO4/C, but it can stabilize the crystal structure, decrease charge transfer resistance, enhance Li ion diffusion velocity, further improve its cycling and high-rate capabilities of LiFePO4/C.
文摘以Li OH·H2O,Fe SO4·7H2O,H3PO4、Ni SO4、Mn SO4为原料,采用水热法合成了Li Fe1-xNixPO4和Li Fe1-xMnxPO4。采用XRD、FESEM分析了正极材料的组成、结构及形貌,利用电池测试仪测试了正极材料的电化学性能。结果表明:镍、锰掺杂Li Fe PO4具有较好的充放电性能。Li Fe0.9Mn0.1PO4的首次充放电比容量分别为143.5、143 m Ah/g,Li Fe0.95Ni0.05PO4的首次充放电比容量分别为132、131 m Ah/g,离子掺杂能显著提高材料的充放电比容量。
基金National High Technology Research and Development Program of China(863)(2013AA110100)National Key Basic Research Program of China(973)(2014CB660806)+1 种基金"West Light"Talents Training Program of Chinese Academy of Sciences(Y412041007)Science and Technology Project of Xining City in 2014(2014-6-24)