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1.
Li2CO3 was used as the secondary lithium source for the synthesis of LiFePO4/C composites via a solid-state reaction method by adopting Li3PO4 as the main lithium source. The main purpose of using Li2CO3 is to compensate for the partial lithium loss during the sintering while reducing the usage of excess Li3PO4. In this study, the effects of Li2CO3 amount on the phase, structural and electrochemical properties of LiFePO4/C material were systematically investigated. The samples were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), constant-current charge–discharge test and cyclic voltammetry (CV). The results showed that by adding an appropriate amount of Li2CO3, the impurities, e.g. Li3PO4, normally appearing in the final product, could be excluded. It was found that LiFePO4/C with Li2CO3 in 6% excess (vs. stoichiometric LiFePO4) exhibited the best electrochemical performance, which delivered initial discharge capacities of 141.7, 125.2, 119.9 and 108.9 mAh g?1, respectively, at 0.5, 1, 2 and 5C rates. The capacity was reduced to 113.4 mAh g?1 after 50 cycles at 2C rate, with capacity retention rate of 94.6%.  相似文献   

2.
LiFePO4/C was prepared by wet milling-assisted spray drying. The effects of ball-milling time on the characteristics of LiFePO4/C were investigated by X-ray diffraction, scanning electron microscopy, transmission electron microscopy, Brunauer-Emmett-Teller analysis, cyclic voltammograms, electrochemical impedance spectra, and galvanostatic charge–discharge testing. Bowl-like material was obtained, surrounded by a network of carbon, which display larger specific surface area. The specific surface area of particle first increased and then decreased, as the increasing of ball-milling time; when ball-milling time reach 2.5 h, it showed the largest specific surface area of 29.350 m2 g?1, primary particles with size of ~50 nm, delivered a discharge capacity of 162 mAh g?1 at 0.5 C and 123 mAh g?1 at 10 C, and with no capacity loss.  相似文献   

3.
《Solid State Ionics》2006,177(3-4):333-341
A study of LiFePO4-based electrodes prepared through various synthesis conditions is presented. From X-Ray diffraction, high resolution transmission electron microscopy, electrochemical Li+ extraction/insertion and electrical conductivity data we conclude that the use of starting precursors such as Li2CO3, FeC2O4·2H2O and/or Nb(OC6H5)5 produces LiFePO4-based composites containing significant amounts of carbon. We never succeeded in doping LiFePO4 with Nb to yield Li1−xNbxFePO4 but produced, instead, crystalline β-NbOPO4 and/or an amorphous (Nb, Fe, C, O, P) “cobweb” around LiFePO4 particles which is responsible for superior electrochemical activity. AC-conductivity measurements conclude to a total electrical conductivity of ∼10 9 S cm 1 at 25 °C with an activation energy of ca. 0.65 eV for pure LiFePO4 and LiFePO4/β-NbOPO4 composites. C-containing LiFePO4 samples, including those that were tentatively but unsuccessfully doped with Nb, are much more conductive (up to 1.6 · 10 1 S cm 1) with an activation energy ΔE∼0.08 eV.  相似文献   

4.
An improved solid-state reaction route has been employed to synthesize Mg2+-doped LiFePO4/C nanocomposite cathode by calcining the precursor obtained via evaporating the mixture of ascorbic acid, LiCH3COO·2H2O, Mg(CH3COO)2·4H2O, and amorphous FePO4 nanoparticles in anhydrous ethanol under continuous stirring. Ascorbic acid used here acted as both reducing agent and carbon source. The amorphous FePO4 was pre-prepared via a simple and fast oxidic precipitation method. Electrochemical tests showed that the final product exhibited good rate and cycling performance, with discharge capacities of 145.2 mAh g?1 at 0.2 C, 129.8 mAh g?1 at 1 C, 107.6mAh g?1 at 5 C, and 81.4 mAh g?1 at 20 C, respectively. The Mg2+-doped LiFePO4/C showed enhanced charge–discharge performance compared with undoped LiFePO4/C, especially at high rates. The enhanced electrochemical performance of the composite could be attributed to a combination result of the fine particle size with narrow particle size distribution, homogeneous carbon coating on the surface of the particles, and magnesium ion doping.  相似文献   

5.
Grinding, general incipient wetness and competitive incipient wetness were investigated on the preparation of LiFePO4/C (LFP) composites from precipitated FePO4 precursor. This article focuses on the fundamental details of mixing processes for LFP production, of which the literature is sparse. The structure features of LiFePO4/C composites were analyzed by X-ray diffraction (XRD), while the morphologies were characterized by field emission scanning electron microscopy (FESEM). The electrochemical performances were studied by galvanostatic charge/discharge measurements. Both mixing processes and lithium sources are capable of affecting the electrochemical performances by altering the crystallinity, the quality of carbon coating, or even the impurity formation of LiFePO4/C composites. Liquid alkalis caused the formation of impurities and mild decrease of crystallinity, whereas competitive cations did not produce impurities but significantly decreased the crystallinity of LiFePO4/C composites.  相似文献   

6.
LiFePO4/C composites were synthesized by carbothermal reduction method using commercial FePO4 and Tween#80-assisted synthesized nano-FePO4 as starting materials, glucose as reducing agent, and also carbon source. The FePO4 intermediates were characterized by X-ray diffraction and scanning electron microscopy. A suitable mole ratio of Li to Fe was investigated, and the performances of samples synthesized under different temperatures were studied. It seems that the residual carbon content, which determine the electrochemical polarization of the cathode composites, greatly depend on the synthesis temperature when carbothermal reduction method was used. The electrochemical measurements showed that the discharge capacity first increase and then decrease with the rise of temperature. The optimal sample synthesized at 600 °C for 10 h using homemade FePO4 as iron source exhibit 142 mAh?g?1 at 0.2 C and a capacity retention rate of 98.8 % after 50 cycles.  相似文献   

7.
LiFePO4/C cathode materials were prepared from different lithium and iron sources, using glucose as the carbon source and the reducing agent, via a solid state reaction. The samples were characterized by X-ray diffraction (XRD), transmission electron microscopy (TEM), scanning electron microscopy (SEM), galvanostatic charge-discharge test and cyclic voltammetry (CV). The results showed that the LiFePO4/C is olivine-type phase, and composed of relatively large particles of about 400 nm and some nano-sized particles, which favor the electronic conductivity. The LiFePO4/C cathode material synthesized from Li2CO3 and Fe2O3 had the smallest particles and the highest uniformity. It delivered the capacity of 145.8 mA h/g at 0.2 C, and had good reversibility and high capacity retention. The precursor of LiFePO4/C was characterized by thermogravimetry (TG) to discuss the crystallization formation mechanism of LiFePO4.  相似文献   

8.
A highly crystalline LiFePO4/C phase was successfully synthesized by a microwave irradiation method in 4 min. SEM and particle size analysis indicate that the particle size of resulting LiFePO4/C is much smaller than that of the solid-state derived sample and that it mostly distributes in the range of 160–600 nm. Cycling tests show that the sample prepared by microwave method can deliver 150 mAh g? 1 at 17 mA g? 1(0.1C). Further AC impedance measurements reveal that the LiFePO4 electrode can be well activated after the first cycle as reflected by the dramatic decrease in the charge transfer resistance.  相似文献   

9.
低温固相反应法制备的NiFe2O4纳米颗粒的结构与磁性   总被引:1,自引:0,他引:1       下载免费PDF全文
采用低温固相反应法制备了晶粒尺寸在8—47nm之间的NiFe2O4纳米颗粒系列样品,用X射线衍射仪(XRD)、高分辨中子粉末衍射谱仪、振动样品磁强计和超导量子干涉仪等对样品的晶体结构、宏观磁性和纳米颗粒的表面各向异性进行了分析研究.XRD和中子衍射测量结果显示纳米颗粒的晶格常数略高于块体材料,样品的氧参量表明纳米颗粒的晶格畸变程度没有块体材料严重.相对块体材料,纳米颗粒具有较小的磁化强度、较大的矫顽力和各向异性能密度.纳米颗粒从多畴转变为单畴的临界尺寸约为40nm,超顺磁性临界尺寸约为16nm.  相似文献   

10.
低温固相反应法制备的NiFe2O4纳米颗粒的结构与磁性   总被引:2,自引:0,他引:2       下载免费PDF全文
采用低温固相反应法制备了晶粒尺寸在8-47 nm之间的NiFe2O4纳米颗粒系列样品,用X射线衍射仪(XRD)、高分辨中子粉末衍射谱仪、振动样品磁强计和超导量子干涉仪等对样品的晶体结构、宏观磁性和纳米颗粒的表面各向异性进行了分析研究.XRD和中子衍射测量结果显示纳米颗粒的晶格常数略高于块体材料,样品的氧参量表明纳米颗粒的晶格畸变程度没有块体材料严重.相对块体材料,纳米颗粒具有较小的磁化强度、较大的矫顽力和各向异性能密度.纳米颗粒从多畴转变为单畴的临界尺寸约为40 nm,超顺磁性临界尺寸约为16 nm.  相似文献   

11.
Surface modification with metal oxides is an efficient method to improve the performance of LiFePO4. Carbon and V2O3 co-coated LiFePO4 is synthesized by carbothermal reduction method combined with star-balling technique, and vanadium oxide is produced in situ. The structure and pattern of LiFePO4/C modified with different amounts of vanadium oxide (0–5 mol%) were studied by X-ray diffraction, field-emission scanning electron microscopy, transmission electron microscopy, and micro-Raman spectroscopy. The electrochemical performance of material electrodes was analyzed by constant current charge–discharge and electrochemical impedance spectra (EIS). Electrochemical test results show that sample B (1.0 mol%) exhibits the best electrochemical performance, whose discharge capacity is up to 160.1, 127.2, and 88.4 mAh?g?1 at 1, 5, and 10 °C, respectively. It indicates that V2O3 modification efficiently improves specific capacity and rate capability. The EIS experiment demonstrates that catalytic activity and reversibility of the cathode electrode are obviously increased by the surface modification of vanadium oxide.  相似文献   

12.
This study focuses on the effect of addition of surfactant as a dispersing agent during vibratory ball milling of LiFePO4 (LFP) precursor materials on the electrochemical performance of solid-state reaction synthesized LFP for lithium-ion battery cathode material. LFP particles formed after calcinations of ball milled LFP precursors (Li2CO3, FeC2O4, and NH4H2PO4) showed better size uniformity, morphology control, and reduced particle size when anionic surfactant (Avanel S-150) was used. The specific surface area of LFP particles increased by approximately twofold on addition of surfactant during milling. These particles showed significantly enhanced cyclic performance during charge/discharge due to a reduced polarization of electrode material. Electrodes fabricated from LFP particles by conventional milling process showed a 22 % decrease in capacity after 50 cycles, whereas the performance of electrode prepared by surfactant processed LFP showed only 3 % loss in capacity. The LFP particles were characterized using XRD, FE-SEM, particle size distribution, density measurement, and BET-specific surface area measurement. Electrochemical impedance spectra and galvanostatic charge/discharge test were performed for the electrochemical performance using coin-type cell.  相似文献   

13.
14.
The LiMnPO4/C composite material with ordered olivine structure was synthesized in 1:1(v/v) enthanol–water mixed solvent in the presence of cetyltrimethylammonium bromide (CTAB) at 240 °C. Rod-like particle morphology of the resulting LiMnPO4/C powder with a uniform particle dimension of 150 × 600 nm was observed by using scanning electron microscope and the amount of carbon coated on the particle surface was evaluated as 2.2wt% by thermogravimetric analysis, which is reported for the first time to date for LiMnPO4/C composite. The measurement of the electrochemical performance of the material used in rechargeable lithium ion battery shows that the LiMnPO4/C sample delivers an initial discharge capacity of 126.5 mA h g?1 at a constant current of 0.01 C, which is 74% of the theoretical value of 170 mA h g?1. The electrode shows good rated discharge capability and high electrochemical reversibility when compared with the reported results, which is verified further by the evaluation of the Li ion diffusion coefficient of 5.056×10?14 cm2/s in LiMnPO4/C.  相似文献   

15.
《Solid State Ionics》2006,177(5-6):497-500
LiFePO4 powder was synthesized by means of a new route, using a two step process. In the first step, an intermediate compound was synthesized by the sol–gel method. This precursor compound to LiFePO4 was characterized by thermal analysis (TG/DTG and DSC), Mössbauer spectroscopy, Transmission Electronic Microscopy (TEM) and Small Angle Scattering (SAXS). In the second step, the precursor was sintered and analyzed by X-ray diffraction (XRD), showing the formation of the proposed single phase material.  相似文献   

16.
LiFePO4/C composite cathode material has been synthesized by a carbothermal reduction method using β-FeOOH nanorods as raw materials and glucose as both reducing agent and carbon source. The results indicate that the content of carbon and the morphology of raw material have effect on the electrochemical performance of the final LiFePO4/C material. Sample LFP14 with a carbon content of 2.79 wt.% can deliver discharge capacities of 158.8, 144.3, 111.0, and 92.9 mAh g?1 at 0.1, 1, 10, and 15 C, respectively. When decreasing the current from 15 C back to 0.1 C, a discharge capacity of 157.5 mAh g?1 is recovered, which is 99.2 % of its initial capacity. Therefore, as a kind of cathode material for lithium ion batteries, this LiFePO4/C material synthesized via a carbothermal reduction method is promising in large-scale production, and has potential application in upcoming hybrid electric vehicles or electric vehicles.  相似文献   

17.
A novel layer-by-layer electrodeposition and heat-treatment approach was attempted to obtain Sn-Sb-Cu film anode for lithium ion batteries. The preparation of Sn-Sb-Cu anodes started with galvanostatic electrochemically depositing antimony and tin sequentially on the substrate of copper foil collector. Sn-Sb and Cu-Sb alloys were formed when heated. The SEM analysis showed that the crystalline grains become bigger and the surface of the Sn-Sb-Cu anode becomes more denser after annealing. The energy dispersive spectroscopy (EDS) and X-ray diffraction (XRD) analysis showed the antimony, tin and copper were alloyed to form SnSb and Cu2Sb after heat treatment. The X-ray photoelectron spectroscopy (XPS) analysis showed the surface of the Sn-Sb-Cu electrode was covered by a thin oxide layer. Electrochemical measurements showed that the annealed Sn-Sb-Cu anode has high reversible capacity and good capacity retention. It exhibited a reversible capacity of about 962 mAh/g in the initial cycle, which still remained 715 mAh/g after 30 cycles.  相似文献   

18.
LiFePO4/C active materials were synthesized via a modified carbothermal method, with a low raw material cost and comparatively simple synthesis process. Rheological phase technology was introduced to synthesize the precursor, which effectively decreased the calcination temperature and time. The LiFePO4/C composite synthesized at 700 °C for 12 h exhibited an optimal performance, with a specific capacity about 130 mAh g?1 at 0.2C, and 70 mAh g?1 at 20C, respectively. It also showed an excellent capacity retention ratio of 96 % after 30 times charge–discharge cycles at 20C. EIS was applied to further analyze the effect of the synthesis process parameters. The as-synthesized LiFePO4/C composite exhibited better high-rate performance as compared to the commercial LiFePO4 product, which implied that the as-synthesized LiFePO4/C composite was a promising candidate used in the batteries for applications in EVs and HEVs.  相似文献   

19.
Using urea, boric acid and polyethylene glycol (PEG) as auxiliary reagents, the novel red-emitting phosphors Ca19Zn2 (PO4)14:Eu3+ have been successfully synthesized by a modified solid-state reaction. Thermogravimetric (TG) analysis, X-ray diffraction (XRD), transmission electron microscopy (TEM) and photoluminescence (PL) spectra were used to characterize the resulting phosphors. The dependence of the photoluminescence properties of Ca19Zn2 (PO4)14:Eu3+ phosphors upon urea, boric acid and PEG concentration and the quadric-sintered temperature were investigated. Luminescent measurements showed that the phosphors can be efficiently excited by ultraviolet (UV) to visible region, emitting a red light with a peak wavelength of 616 nm. The material has potential application as a fluorescent material for ultraviolet light-emitting diodes (UV-LEDs).  相似文献   

20.
《Current Applied Physics》2015,15(4):541-546
Porous LiFePO4 is synthesized and coated with amorphous carbon by using high energy nano-mill (HENM) processed solid-state reaction method. FeCl3 (38%) containing water solution which is originated from pickling of steel scrap (waste liquid) is used as a source material in this study. The result indicates that LiFePO4 powders are well coated with the amorphous carbon. HENM process successfully produces the porous LiFePO4 with homogeneously distributed pores and a well networked carbon web, which delivers an enhanced electrochemical rate capability. HENM process is incorporated as an effective route for reducing particle size, distributing particle homogeneously and averting agglomeration of particles of precursor in this study. X-ray diffraction, scanning electron microscopy with elemental mapping, transmission electron microscopy with selected area (electron) diffraction, Raman spectroscopy, cyclic voltammetry, and galvanostatic charge/discharge are employed to characterize the final product. Electrochemical measurement shows that the synthesized LiFePO4/C composite cathode delivers an initial discharge capacity of 161 mAhg−1 at 0.1C-rate between 4.2 and 2.5 V. Remarkably, the cathode delivers 101.9 mAhg−1 at high charge/discharge rate (10 C).  相似文献   

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