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1.
The precursors of LiFePO4 were prepared by a sol-gel method using lithium acetate dihydrate, ferrous sulfate, phosphoric acid, citric acid and polyethylene glycol as raw materials, and then the carbon-modified nanocrystalline LiFePO4 (LiFePO4/C) cathode material was synthesized by a one-step microwave method with the domestic microwave oven. The effect of microwave time and carbon content on the performance of the resulting LiFePO4/C material was investigated. Structural characterization by X-ray diffraction and scanning electron microscopy proved that the olivine phase LiFePO4 was synthesized and the grain size of the samples was several hundred nanometers. Under the optimal conditions of microwave time and carbon content, the charge-discharge performance indicated that the nanosized LiFePO4/C had a high electrochemical capacity at 0.2 C (152 mAh g−1) and improved capacity retention; the exchange current density was 1.6977 mA cm−2. Furthermore, the rate capability was improved effectively after LiFePO4 was modified with carbon, with 59 mAh g−1 being obtained at 20 C.  相似文献   

2.
Carbon-coated LiFePO4 (C-LiFePO4) with micron particle size (6 μm) and high tap density (1.6 g cm−3) was prepared from spherical FePO4·2H2O powder via the co-precipitation method. The C-LiFePO4 powder was calcined at temperatures between 650 and 800 °C. The 6 μm C-LiFePO4 prepared at 800 °C exhibited an excellent rate capability, delivering 150 mAh g−1 on discharge at the 0.1 C-rate and 108 mAh g−1 at the 5 C-rate. The volumetric capacity of the 6 μm C-LiFePO4 corresponded to 225 mAh cm−3, since the large secondary particles (6 μm) C-LiFePO4 sufficiently allowed tight packing of the particles. The 6 μm C-LiFePO4 powder with high tap density makes an attractive positive electrode candidate for lithium-ion batteries designed for high energy density.  相似文献   

3.
Both Ni doping and carbon coating are adopted to synthesize a nano-sized LiFePO4 cathode material through a simple solid-state reaction. It is found that the Ni2+ has been successfully doped into LiFePO4 without affecting the phospho-olivine structure from the XRD result. The images of SEM and TEM show that the size of particles is distributed in the range of 20-60 nm, and all the particles are coated with carbon completely. The results of XPS show the valence state of Fe and Ni in the LiFePO4. The electronic conductivity of the material is as high as 2.1 × 10−1 S cm−1, which should be ascribed to the coefficient of the conductive carbon network and Ni doping. As a cathode material for lithium-ion batteries, the Ni doped LiFePO4/C nanocomposite delivers a discharge capacity of 170 mAh g−1 at 0.2 C, approaching the theoretical value. Moreover, the material shows excellent high-rate charge and discharge capability and long-term cyclability. At the high rates of 10 and 15 C, this material exhibits high capacities of 150 and 130 mAh g−1, retaining 95% after 5500 cycles and 93% after 7200 cycles, respectively. Therefore, the as-prepared material is capable of such large-scale applications as electric vehicles and plug-in hybrid electric vehicles.  相似文献   

4.
A water quenching (WQ) method was developed to synthesize LiFePO4 and C-LiFePO4. Our results indicate that this synthesis method ensures improved electrochemical activity and small crystal grain size. The synthetic conditions were optimized using orthogonal experiments. The LiFePO4 sample prepared at the optimized condition showed a maximum discharge capacity of 149.8 mAh g−1 at a C/10 rate. C-LiFePO4 with a low carbon content of 0.93% and a high discharge specific capacity of 163.8 mAh g−1 has also been obtained using this method. Water quenching treatment shows outstanding improvement of the electrochemical performance of LiFePO4.  相似文献   

5.
To achieve a high-energy-density lithium electrode, high-density LiFePO4/C composite cathode material for a lithium-ion battery was synthesized using self-produced high-density FePO4 as a precursor, glucose as a C source, and Li2CO3 as a Li source, in a pipe furnace under an atmosphere of 5% H2-95% N2. The structure of the synthesized material was analyzed and characterized by X-ray diffraction (XRD) and scanning electron microscope (SEM). The electrochemical properties of the synthesized LiFePO4/carbon composite were investigated by cyclic voltammetry (CV) and the charge/discharge process. The tap-density of the synthesized LiFePO4/carbon composite powder with a carbon content of 7% reached 1.80 g m−3. The charge/discharge tests show that the cathode material has initial charge/discharge capacities of 190.5 and 167.0 mAh g−1, respectively, with a volume capacity of 300.6 mAh cm−3, at a 0.1C rate. At a rate of 5C, the LiFePO4/carbon composite shows a high discharge capacity of 98.3 mAh g−1 and a volume capacity of 176.94 mAh cm−3.  相似文献   

6.
Olivine structured LiFePO4/C cathode was synthesized via a freeze-drying route and followed by microwave heating with two kinds of carbon sources: PEG-4000 (organic) and Super p (inorganic). XRD patterns indicate that the as-prepared sample has an olivine structure and carbon modification does not affect the structure of the sample. Image of SEM shows a uniform and optimized particles size, which greatly improves the electrochemical properties. TEM result reveals the amorphous carbon around the surface of the particles. At a low rate of 0.1 C, the LiFePO4/C sample presents a high discharge capacity of 157.8 mAh g−1 which is near the theoretical capacity (170 mAh g−1), and it still attains to 149.1 mAh g−1 after 200 cycles. It also exhibits an excellent rate capacity with high discharge capacities of 143.2 mAh g−1, 137.5 mAh g−1, 123.7 mAh g−1 and 101.6 mAh g−1 at 0.5 C, 1.0 C, 2.0 C and 5.0 C, respectively. EIS results indicate that the charge transfer resistance of LiFePO4 decreases greatly after carbon coating.  相似文献   

7.
LiFePO4/(Ag + C) composite cathodes with a new type of nano-sized carbon webs were synthesized by two methods of an aqueous co-precipitation and a sol-gel process, respectively. Simultaneous thermogravimetric-differential thermal analysis indicates that the crystallization temperature of LiFePO4 is about 455-466 °C, which is close to the pyrolysis temperature of polypropylene, 460 °C. The silver and carbon co-modifying does not affect the olivine structure of LiFePO4 but improves its kinetics in terms of discharge capacity and rate capability. Discharge capacities were improved from 153.4 mA h g− 1 of LiFePO4/C to 160.5 mA h g− 1and 162.1 mA h g− 1 for LiFePO4/(Ag + C) cathodes synthesized by the co-precipitation and sol-gel methods, respectively. The possible reasons for the small difference in discharge capacity of two LiFePO4/(Ag + C) cathodes were discussed. AC impedance measurements show that the Ag + C co-modification decreases the charge transfer resistance of LiFePO4/(Ag + C) cathodes.  相似文献   

8.
The electroactive LiFePO4/C nano-composite has been synthesized by an emulsion drying method. During burning-out the oily emulsion precipitates in an air-limited atmosphere at 300 °C, amorphous or low crystalline carbon was generated along with releasing carbon oxide gases, and trivalent iron as a cheap starting material was immediately reduced to the divalent one at this stage as confirmed by X-ray photoelectron spectroscopy, leading to a low crystalline LiFePO4/C composite. Heat-treatment of the low crystalline LiFePO4/C in an Ar atmosphere resulted in a well-ordered olivine structure, as refined by Rietveld refinement of the X-ray diffraction pattern. From secondary electron microscopic and scanning transmission electron microscopic observations with the corresponding elemental mapping images of iron and phosphorous, it was found that the LiFePO4 powders are modified by fine carbon. The in situ formation of the nano-sized carbon during crystallization of LiFePO4 brought about two advantages: (i) an optimized particle size of LiFePO4, and (ii) a uniform distribution of fine carbon in the product. These effects of the fine carbon on LiFePO4/C composite led to high capacity retention upon cycling at 25 and 50 °C and high rate capability, resulting from a great enhancement of electric conductivity as high as 10−4 S cm−1. That is, the obtained capacity was higher than 90 mAh (g-phosphate)−1 by applying a higher current density of about 1000 mA g−1 (11 C) at 50 °C.  相似文献   

9.
Carbon coated Li3V2(PO4)3 cathode material was prepared by a poly(vinyl alcohol) (PVA) assisted sol-gel method. PVA was used both as the gelating agent and the carbon source. XRD analysis showed that the material was well crystallized. The particle size of the material was ranged between 200 and 500 nm. HRTEM revealed that the material was covered by a uniform surface carbon layer with a thickness of 80 Å. The existence of surface carbon layer was further confirmed by Raman scattering. The electrochemical properties of the material were investigated by charge-discharge cycling, CV and EIS techniques. The material showed good cycling performance, which had a reversible discharge capacity of 100 mAh g−1 when cycled at 1 C rate. The apparent Li+ diffusion coefficients of the material ranged between 9.5 × 10−10 and 0.9 × 10−10 cm2 s−1, which were larger than those of olivine LiFePO4. The large lithium diffusion coefficient of Li3V2(PO4)3 has been attributed to its special NASICON-type structure.  相似文献   

10.
Nanosize lithium iron phosphate (LiFePO4) particles are synthesized using a continuous supercritical hydrothermal synthesis method at 25 MPa and 400 °C under various flow rates. The properties of LiFePO4 synthesized in supercritical water including purity, crystallinity, atomic composition, particle size, surface area and thermal stability are compared with those of particles synthesized using a conventional solid-state method. Smaller size particles ranging 200-800 nm, higher BET surface area ranging 6.3-15.9 m2 g−1 and higher crystallinity are produced in supercritical water compared to those of the solid-state synthesized particles (3-15 μm; 2.4 m2 g−1). LiFePO4 synthesized in supercritical water exhibit higher discharge capacity of 70-80 mAh g−1 at 0.1 C after 30 cycles than that of the solid-state synthesized LiFePO4 (60 mAh g−1), which is attributed to the smaller size particles and the higher crystallinity. Smaller capacity decay at from 135 to 125 mAh g−1 is observed during the 30 cycles in carbon-coated LiFePO4 synthesized using supercritical water while rapid capacity decay from 158 to 140 mAh g−1 is observed in the carbon-coated LiFePO4 synthesized using the solid-state method.  相似文献   

11.
LiFePO4 can be used as a positive electrode material for lithium-ion batteries by making composite with electrical conductive carbonaceous materials. In this study, LiFePO4/C (carbon) composite was prepared by a soft chemistry route, in which sucrose was used as a carbon source of a low price. We tried to optimize a Li/(LiFePO4/C) cell performance through changing synthetic conditions and discussed the factors affecting the electrochemical performances of the cell, such as the amount of the carbon source, synthetic temperature, gas flow rate of pyrolysis and the formation of secondary phases. It was found that the connection of the residual carbon and Fe2P to LiFePO4 particles and the amount of these two phases were important factors. In our experimental conditions, LiFePO4/C including 9.72 wt.% of residual carbon, prepared at 800 °C for 12 h showed the highest reversible capacity and the best C rate performance among the synthesized materials; 130 mAh g−1 at 10C rate and 50 °C.  相似文献   

12.
LiFePO4/C composite cathode materials with carbon nano-interconnect structures were synthesized by one-step solid state reaction using low-cost asphalt as both carbon source and reducing agent. Based on the thermogravimetry, differential scanning calorimetry, transmission electron microscopy and high-resolution transmission electron microscopy, a growth model was proposed to illustrate the formation of the carbon nano-interconnect between the LiFePO4 grains. The LiFePO4/C composite shows enhanced discharge capacity (150 mAh g−1) with excellent capacity retention compared with the bare LiFePO4 (41 mAh g−1) due to the electronically conductive nanoscale networking provided by the asphalt-based carbon. The results prove that the asphalt is a perfect carbon source and reduction agent for cost-effective production of high performance LiFePO4/C composite.  相似文献   

13.
A simple and effective method, ethylene glycol-assisted co-precipitation method, has been employed to synthesize LiNi0.5Mn1.5O4 spinel. As a chelating agent, ethylene glycol can realize the homogenous distributions of metal ions at the atomic scale and prevent the growth of LiNi0.5Mn1.5O4 particles. XRD reveals that the prepared material is a pure-phase cubic spinel structure (Fd3m) without any impurities. SEM images show that it has an agglomerate structure with the primary particle size of less than 100 nm. Electrochemical tests demonstrate that the as-prepared LiNi0.5Mn1.5O4 possesses high capacity and excellent rate capability. At 0.1 C rate, it shows a discharge capacity of 137 mAh g−1 which is about 93.4% of the theoretical capacity (146.7 mAh g−1). At the high rate of 5 C, it can still deliver a discharge capacity of 117 mAh g−1 with excellent capacity retention rate of more than 95% after 50 cycles. These results show that the as-prepared LiNi0.5Mn1.5O4 is a promising cathode material for high power Li-ion batteries.  相似文献   

14.
The carbon nanospheres-LiFePO4 (CNSs-LiFePO4) composite has been synthesized by PEG (polyethylene glycol, mean molecular weight of 30,000) based sol-gel route. Highly conductive CNSs (30-40 nm) were adopted to improve the electronic conductivity of LiFePO4. PEG was used to promote the dispersion of CNSs with the surface functionalization of CNSs, which could facilitate the coating of CNSs on the surface of the LiFePO4 particles. The sample was characterized by X-ray diffraction, field emission scanning electron microscopy, transmission electron microscopy, and Raman scattering. Electrochemical performance of the CNSs-LiFePO4 composite was characterized by the charge-discharge test and electrochemical impedance spectra measurement. The results indicated that LiFePO4 particles were well coated with the conductive CNSs to overcome the intrinsic low electronic conductivity problem of LiFePO4. The CNSs-LiFePO4 composite delivered an enhanced rate capability (146, 128 and 113 mAh g−1 at 0.1 C, 1 C and 5 C rate). The PEG based sol-gel route enables LiFePO4 networked with CNSs, which offered a higher electrochemical performance.  相似文献   

15.
Pure, nano-sized LiFePO4 and LiFePO4/C cathode materials are synthesized by spray-drying and post-annealing method. The influence of the sintering temperature and carbon coating on the structure, particle size, morphology and electrochemical performance of LiFePO4 cathode material is investigated. The optimum processing conditions are found to be thermal treatment for 10 h at 600 °C. Compared with LiFePO4, LiFePO4/C particles are smaller in size due to the inhibition of crystal growth to a great extent by the presence of carbon in the reaction mixture. And that the LiFePO4/C composite coated with 3.81 wt.% carbon exhibits the best electrode properties with discharge capacities of 139.4, 137.2, 133.5 and 127.3 mAh g−1 at C/5, 1C, 5C and 10C rates, respectively. In addition, it shows excellent cycle stability at different current densities. Even after 50 cycles at the high current density of 10C, a discharge capacity of 117.7 mAh g−1 is obtained (92.4% of its initial value) with only a low capacity fading of 0.15% per cycle.  相似文献   

16.
A nano-LiFePO4/C composite has been directly synthesized from micrometer-sized Li2CO3, NH4H2PO4, and FeC2O4·2H2O by the lauric acid-assisted solid-state reaction method. The SEM and TEM observations demonstrate that the synthesized nano-LiFePO4/C composite has well-dispersed particles with a size of about 100–200 nm and an in situ carbon layer with thickness of about 2 nm. The prepared nano-LiFePO4/C composite has superior rate capability, delivering a discharge capacity of 141.2 mAh g−1 at 5 °C, 130.9 mAh g−1 at 10 C, 121.7 mAh g−1 at 20 °C, and 112.4 mAh g−1 at 30 °C. At −20 °C, this cathode material still exhibits good rate capability with a discharge capacity of 91.9 mAh g−1 at 1 °C. The nano-LiFePO4/C composite also shows excellent cycling ability with good capacity retention, up to 100 cycles at a high current density of 30 °C. Furthermore, the effect of lauric acid in the preparation of nano-LiFePO4/C composite was investigated by comparing it with that of citric acid. The SEM images reveal that the morphology of the LiFePO4/C composite transformed from the porous structure to fine particles as the molar ratio of lauric acid/citric acid increased.  相似文献   

17.
A spinel LiMn2O4/C composite was synthesized by hydrothermally treating a precursor of manganese oxide/carbon (MO/C) composite in 0.1 M LiOH solution at 180 °C for 24 h, where the precursor was prepared by reducing potassium permanganate with acetylene black (AB). The AB in the precursor serves as the reducing agent to synthesize the LiMn2O4 during the hydrothermal process; the excess of AB remains in the hydrothermal product, forming the LiMn2O4/C composite, where the remaining AB helps to improve the electronic conductivity of the composite. The contact between LiMn2O4 and C in our composite is better than that in the physically mixed LiMn2O4/C material. The electrochemical performance of the LiMn2O4/C composite was investigated; the material delivered a high capacity of 83 mAh g−1 and remained 92% of its initial capacity after 200 cycles at a current density of 2 A g−1, indicating its excellent rate capability as well as good cyclic performance.  相似文献   

18.
The synthetic rutile and metal-doped LiFePO4 are prepared from the high-titanium residue and iron-rich lixivium, which are obtained from the ilmenite by a mechanical activation and leaching process. ICP results show that the rutile contains 92.01% TiO2, 1.59% Fe2O3, 0.034% MnO2 and 0.60% (MgO + CaO), which meet the requirement of the titanium dioxide chlorination process. The results also reveal that small amounts of Al3+, Ca2+ and Ti4+ precipitate in the FePO4·xH2O precursor. XRD and Rietveld-refine results show that the metal-doped LiFePO4 is single olivine-type phase and well crystallized, and Ti4+ occupy M1 site, Ca2+ occupy M2 site and Al3+ occupy both sites, which indicates the formation of cation-deficient solid solution. The sample exhibits a capacity of 123 mAh g1 at 5C rate, and retains 94.3% of the capacity after 100 cycles.  相似文献   

19.
Carbon-coated LiFePO4 composites were synthesized by a new method of high-temperature high-energy ball milling (HTHEBM). Fe2O3 and LiH2PO4 were used as raw materials. Glucose, sucrose, citric acid and active carbon were used as reducing agents and carbon sources, respectively. In this method, high-energy ball milling and carbon coating worked together and, therefore, fine and homogeneous LiFePO4/C particles with excellent properties were obtained in a relatively short synthesis time of 9 h. Moreover, the synthesis process could be completely finished at a relatively lower temperature of 600 °C for high-energy ball milling transforming mechanical energy into thermal energy. The results of X-ray diffraction (XRD) analysis, scanning electron microscopy (SEM), transmission electron microscopy (TEM) and electrochemical performance tests indicated that carbon source had an important influence on the properties of LiFePO4/C composites synthesized by the HTHEBM method. It was proved that the LiFePO4 composites coated with glucose had the best properties with 1 μm geometric mean diameter and 150.3 mA h g−1 initial discharge capacity at a current rate of 0.1 C. After the 20th cycle test, the reversible capacity was 148 mA h g−1 at 0.1 C, showing a retention ratio to the initial capacity of 98.5%.  相似文献   

20.
Yun-Ho Jin 《Electrochimica acta》2010,55(24):7315-7321
The crystallization and morphology of brookite and anatase titania (TiO2) were controlled using the urea-mediated hydrolysis/precipitation route in the presence of the Ti3+ ions. Without the strong complexing agents and the non-hydrothermal conditions, simple alterations to the urea concentration led to the synthesis from brookite nanorods to anatase nanoflowers at a low temperature below 100 °C, whereas the BET specific surface area evolved from 102 to 268 m2 g−1, respectively. A possible formation mechanism was also proposed for these TiO2 nanostructures. The excellent reversible capacity and rate capability were achieved for the anatase nanoflowers because of the small crystallite size and significantly large surface area.  相似文献   

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