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LiNiO2, LiNi0.995Al0.005O2, LiNi0.975Ga0.025O2, LiNi0.990Ti0.010O2 and LiNi0.990Al0.005Ti0.005O2 were synthesized by preheating at 400 °C for 30 min in air and calcination at 750 °C for 36 h in an O2 stream with excess lithium amount z = 0.10 in Li1+z Ni1−y M y O2. For these samples, the discharge capacities and discharge capacity degradation rate are compared. LiNiO2 has the largest discharge capacity at the 20th cycle (n = 20) and the 50th cycle (n = 50). LiNiO2 and LiNi0.995Al0.005O2 have relatively good cycling performances and their discharge capacities at n = 50 are 134 and 123 mAh/g, respectively, at 0.1 C rate. The crystallite sizes and strains were calculated by the Williamson–Hall method with XRD patterns and compared for the samples as prepared and after 50 charge–discharge cycles.  相似文献   

3.
The optimum conditions for synthesizing LiNi1-y Co y O2 (y=0.1, 0.3 and 0.5) by a simplified combustion method, in which the preheating step is omitted, and the electrochemical properties of these materials were investigated. The optimum condition for synthesizing LiNi0.9Co0.1O2 by the simplified combustion method is calcination at 800 °C for 12 h in air in 3.6 mole ratio of urea to nitrate. The LiNi0.9Co0.1O2 synthesized under these conditions shows the smallest R-factor{(I 006+I 102)/I 101} and the largest I 003/I 104, indicating better hexagonal ordering and less cation mixing, respectively. The LiNi0.7Co0.3O2 synthesized at 800 °C for 12 h in air in 3.6 mole ratio of urea to nitrate has the largest first discharge capacity 156.2 mA h g−1 at 0.5C and shows relatively good cycling performance. This sample shows better hexagonal ordering and less cation mixing than the other samples. The particle size of the LiNi0.7Co0.3O2 is relatively small and its particles are spherical with uniform particle size.  相似文献   

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LiNi1−y Co y O2 samples were synthesized at 800 °C and 850 °C, by the solid-state reaction method, using the starting materials LiOH·H2O, Li2CO3, NiO, NiCO3, Co3O4 and CoCO3. The LiNi1−y Co y O2 synthesized using Li2CO3, NiO and Co3O4 exhibited the α-NaFeO2 structure of the rhombohedral system (space group ). As the Co content increased, the lattice parameters a and c decreased. The reason is that the radius of the Co ion is smaller than that of the Ni ion. The increase in c/a shows that a two-dimensional structure develops better as the Co content increases. The LiNi0.7Co0.3O2 synthesized at 800 °C using LiOH · H2O, NiO and Co3O4 exhibited a larger first discharge capacity of 162 mAh g−1 than the other samples. The cycling performances of the samples with the first discharge capacity larger than 150 mAh g−1 were investigated. LiNi0.9Co0.1O2 synthesized at 850 °C using Li2CO3, NiO and Co3O4 showed excellent cycling performance. Samples with larger first discharge capacity will have a greater tendency for lattice destruction due to expansion and contraction during intercalation and deintercalation, than samples with smaller first discharge capacity. As the first discharge capacity increases, the capacity fading rate thus increases.  相似文献   

6.
The phases that appear in the intermediate reaction steps for the formation of lithium nickel oxide were deduced from XRD and DTA analyses. XRD analysis and electrochemical measurements were performed for LiNi1−yFeyO2 (0.000 ≤ y ≤ 0.300) samples calcined in air after preheating in air at 400 °C for 30 min. Rietveld refinement of the LiNi1−yFeyO2 XRD patterns (0.000 < y ≤ 0.100) was carried out from a [Li,Ni]3b[Li,Ni,Fe]3a[O2]6c starting structure model. The samples of LiNi1−yFeyO2 with y = 0.025 and 0.050 had higher first discharge capacities when compared with LiNiO2 and exhibited better or similar cycling performance at a 0.1 C rate in the voltage range of 2.7–4.2 V. The LiNi0.975Fe0.025O2 sample had the highest first discharge capacity of 176.5 mAh/g and a discharge capacity of 121.0 mAh/g at n = 100. With the exception of Co-substituted LiNiO2, such a high first discharge capacity has not been previously reported.  相似文献   

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For the syntheses of LiNi1−y Fe y O2 (0.000 ≤ y ≤ 0.300), mixtures of the starting materials with the desired compositions were preheated in an air atmosphere at 400 °C for 30 min and calcined in air at 700 °C for 48 h. The phases appearing in the intermediate reaction steps for the formation of lithium nickel oxide are deduced from the DTA analysis. XRD analysis, FE-SEM observation, FTIR analysis and electrochemical measurement were performed for the synthesized Li1−z (Ni1−y Fe y )1+z O2 (0.000 ≤ y ≤ 0.300) samples. The samples of Li1−z (Ni1−y Fe y )1+z O2 with y = 0.025 and 0.050 have higher first discharge capacities than Li1−z (Ni1−y Fe y )1+z O2 with y = 0.000 and better or similar cycling performance at the 0.1 C rate in the voltage range of 2.7–4.2 V. Similar results have not previously been reported except for Co-substituted LiNiO2. The sample Li1−z (Ni0.975Fe0.025)1+z O2 has the highest first discharge capacity (176.5 mAh g−1). Rietveld refinement of the XRD patterns of LiNi1−y Fe y O2 (0.000 < y ≤ 0.100) from a starting structure model [Li,Ni]3b[Li,Ni,Fe]3a[O2]6c showed that cation disordering occurred in the samples.  相似文献   

9.
LiNi1−yCoyO2 (y=0.1, 0.3 and 0.5) were synthesized by solid state reaction method at 800 °C and 850 °C from LiOH·H2O, NiO and Co3O4 as starting materials. The electrochemical properties of the synthesized LiNi1−yCoyO2 were investigated. As the content of Co decreases, particle size decreases rapidly and particle size distribution gets more homogeneous. When the particle size is compared at the same composition, the particles synthesized at 850 °C are larger than those synthesized at 800 °C. LiNi0.7Co0.3O2 synthesized at 850 °C has the largest intercalated and deintercalated Li quantity Δx among LiNi1−yCoyO2 (y=0.1, 0.3 and 0.5). LiNi0.7Co0.3O2 synthesized at 850 °C has the largest first discharge capacity (178 mAh/g), followed by LiNi0.7Co0.3O2 (162 mAh/g) synthesized at 800 °C. LiNi0.7Co0.3O2 synthesized at 800 °C has discharge capacities of 162 and 125 mAh/g at n=1 and n=5, respectively.  相似文献   

10.
A lithium insertion material having the composition LiNi0.3Co0.3Mn0.3Fe0.1O2 was synthesized by simple sol-gel method. The structural and electrochemical properties of the sample were investigated using X-ray diffraction spectroscopy (XRD) and the galvanostatic charge-discharge method. Rietvelt analysis of the XRD patterns shows that this compound can be classified as α-NaFeO2 structure type (R3m; a=2.8689(5) Å and 14.296(5) Å in hexagonal setting). Rietvelt fitting shows that a relatively large amount of Fe and Ni ion occupy the Li layer (3a site) and a relatively large amount of Li occupies the transition metal layer (3b site). LiNi0.3Co0.3Mn0.3Fe0.1O2 when cycled in the voltage range 4.3–2.8 V gives an initial discharge capacity of 120 mAh/g, and stable cycling performance. LiNi0.3Co0.3Mn0.3Fe0.1O2 in the voltage range 2.8–4.5 V has a discharge capacity of 140 mAh/g, and exhibits a significant loss in capacity during cycling. Ex-situ XRD measurements were performed to study the structure changes of the samples after cycling between 2.8–4.3 V and 2.8–4.5 V for 20 cycles. The XRD and electrochemical results suggested that cation mixing in this layered structure oxide could be causing degradation of the cell capacity.  相似文献   

11.
LiNiO2, LiNi0.995Al0.005O2, LiNi0.975Ga0.025O2, LiNi0.990Ti0.010O2 and LiNi0.990Al0.005Ti0.005O2 specimens were synthesized by preheating at 400 °C for 30 min in air and calcination at 750 °C for 36 h in an O2 stream. The variation of the discharge capacities with C-rate for the synthesized samples was investigated. LiNi0.990Al0.005Ti0.005O2 has the largest first discharge capacities at the 0.1 and 0.2 C rates. LiNi0.990Ti0.010O2 has the largest first discharge capacity at the 0.5 C rate. In case of LiNiO2 and LiNi0.990Ti0.010O2, the first discharge capacity decreases slowly as the C-rate increases. LiNiO2 has the largest discharge capacities at n = 10 (after stabilization of the cycling performance) at the 0.1, 0.2 and 0.5 C rates. This is considered to be related with the largest value of I0 0 3/I1 0 4 and the smallest value of R-factor (the least degree of cation mixing) among all the samples. LiNi0.975Ga0.025O2 exhibits the lowest discharge capacity degradation rates at 0.1, 0.2 and 0.5 C rates.  相似文献   

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LiMn2O4–y Br y nanoparticles were synthesized successfully for the first time by a room temperature solid-state coordination method. X-ray diffractometry patterns indicated that the LiMn2O4–y Br y powders were well-crystallized pure spinel phase. Transmission electron microscopy images showed that the LiMn2O4–y Br y powders consisted of small and uniform nanosized particles. Synthesis conditions such as the calcination temperature and the content of Br were investigated to optimize the ideal condition for preparing LiMn2O4–y Br y with the best electrochemical performances. The optimized synthesis condition was found in this work; the calcination temperature is 800 °C and the content of Br is 0.05. The initial discharge capacity of LiMn2O3.95Br0.05 obtained from the optimized synthesis condition was 134 mAh/g, which is far higher than that of pure LiMn2O4, indicating introduction of Br in LiMn2O4 is quite effective in improving the initial discharge capacity.  相似文献   

14.
LiCoyMn2−yO4 (y = 0.00, 0.04 and 0.08) were synthesized using a combustion method, and the electrochemical properties were examined in the voltage range of 3.5–5.0 V. The XRD patterns of the synthesized samples were similar, and the samples had a spinel phase structure. The first charge capacity curves exhibited an inflection in the voltage range of 4.2–5.0 V, where it is believed that additional, previously unreported phase transition occurs. The voltage vs. x curves for the first to fifth cycle exhibited two distinct voltage plateaus, corresponding well to a two-phase reaction and a one-phase reaction, respectively, as reported previously. For the voltage range of 3.5–5.0 V, the first discharge capacity increased and the cycling performance improved as y increased. Among these samples, LiCo0.08Mn1.92O4 had the largest first discharge capacity of 132.5 mA h/g at 600 μA/cm2, and its cycling efficiency was 91.1% at the 15th cycle in the voltage range of 3.5–5.0 V.  相似文献   

15.
Spherical LiNi1/2Mn1/2O 2 powders were synthesized from LiOH . H2O and coprecipitated metal hydroxide, (Ni1/2Mn1/2)(OH)2. The average particle size of the powders was about 10 m and the size distribution was quite narrow due to the homogeneity of the metal hydroxide, (Ni1/2Mn1/2)(OH)2. The tap-density of the LiNi1/2Mn1/2O2 powders was approximately 2.2 g cm–3, which is comparable to the tap-density of commercial LiCoO2. The LiNi1/2Mn1/2 O2electrode delivered a discharge capacity of 152, 163, 183, and 189 mA h g–1 in the voltage ranges of 2.8–4.3, 2.8–4.4, 2.8–4.5, and 2.8–4.6 V, respectively, with good cyclability. Furthermore, Al(OH)3-coated LiNi1/2Mn1/2O2exhibited excellent cycling behavior and rate capability compared to the pristine electrode.  相似文献   

16.
Layered Li[Ni0.5−xMn0.5−xZr2x]O2 (x = 0, 0.025) have been prepared by the mixed hydroxide and molten-salt synthesis method. The individual particles of synthesized materials have a sub-microsize range of 200-500 nm, and LiNi0.475Mn0.475Zr0.05O2 has a rougher surface than that of LiNi0.5Mn0.5O2. The Li/Li[Ni0.5−xMn0.5−xZr2x]O2 (x = 0, 0.025) electrodes were cycled between 4.5 and 2.0 V at a current density of 15 mA/g, the discharge capacity of both cells increased during the first ten cycles. The discharge capacity of the Li/LiNi0.475Mn0.475Zr0.05O2 cell increased from 150 to 220 mAh/g, which is 50 mAh/g larger than that of the Li/LiNi0.5Mn0.5O2 cell. We found that the oxidation of oxygen and the Mn3+ ion concerned this phenomenon from the cyclic voltammetry (CV). Thermal stability of the charged Li[Ni0.5−xMn0.5−xZr2x]O2 (x = 0, 0.025) cathode was improved by Zr doping.  相似文献   

17.
Elemental doping for substituting lithium or oxygen sites has become a simple and effective technique to improve the electrochemical performance of layered cathode materials. Compared with single-element doping, this work presents an unprecedented contribution to the study of the effect of Na+/F co-doping on the structure and electrochemical performance of LiNi1/3Mn1/3Co1/3O2. The co-doped Li1-zNazNi1/3Mn1/3Co1/3O2-zFz (z = 0.025) and pristine LiNi1/3Co1/3Mn1/3O2 materials were synthesized via the sol–gel method using EDTA as a chelating agent. Structural analyses, carried out by X-ray diffraction, Raman spectroscopy, and X-ray photoelectron spectroscopy, revealed that the Na+ and F dopants were successfully incorporated into the Li and O sites, respectively. The co-doping resulted in larger Li-slab spacing, a lower degree of cation mixing, and the stabilization of the surface structure, which substantially enhanced the cycling stability and rate capability of the cathode material. The Na/F co-doped LiNi1/3Mn1/3Co1/3O2 electrode delivered an initial specific capacity of 142 mAh g−1 at a 1C rate (178 mAh g−1 at 0.1C), and it maintained 50% of its initial capacity after 1000 charge–discharge cycles at a 1C rate.  相似文献   

18.
In this study, the LiCoO2/LiNi1/3Mn1/3Co1/3O2 mixed cathode electrodes were prepared and their electrochemical performances were measured in a high cut-off voltage. As the contents of LiNi1/3Mn1/3Co1/3O2 in the mixed cathode increases, the reversible specific capacity and cycleability of the electrode enhanced, but the rate capability deteriorated. On the contrary, the rate capability of the cathode enhanced but the reversible specific capacity and cycleability deteriorated, according to increasing the contents of LiCoO2 in the mixed cathode. The cell of LiCoO2/LiNi1/3Mn1/3Co1/3O2 (50:50, wt.%) mixed cathode delivers a discharge capacity of ca. 168 mAh/g at a 0.2 C rate. The capacity of the cell decreased with the current rate and a useful capacity of ca. 152 mAh/g was obtained at a 2.0 C rate. However, the cell shows very stable cycleability: the discharge capacity of the cell after 20th charge/discharge cycling maintains ca. 163 mAh/g.  相似文献   

19.
Positive electrode material LiNi1/2Mn1/2O2 was synthesized via the carbonate co-precipitation method and the hydroxide precipitation route to study the effects of the precursor on its structural and electrochemical properties. The results of X-ray diffraction and Rietveld refinement show that the carbonate precursor of Ni2+ and Mn2+ exhibits one phase at a pH of 8.5, while the hydroxide deposit separates into Ni(OH)2 and Mn(OH)2 phases under the same experimental conditions. LiNi1/2Mn1/2O2 material prepared from the hydroxide precursor shows 8.9% Li/Ni exchange and a large capacity loss of 11.3% in the first 10 cycles. By contrast, more uniform distribution of transition metal ions and stable Mn2+ in the carbonate precursor contribute to only 7.8% Li/Ni disorder in the obtained LiNi1/2Mn1/2O2, which delivers a reversible capacity of about 182 mAh g−1 at a current rate of 14 mA g−1 between 2.5 and 4.8 V.  相似文献   

20.
LiCoxMn1−xPO4/C nanocomposites (0 ≤ x ≤ 1.0) were prepared by a combination of spray pyrolysis at 300 °C and wet ball-milling followed by heat treatment at 500 °C for 4 h in 3% H2 + N2 atmosphere. X-ray diffraction analysis indicated that all samples had the single phase olivine structures indexed by orthorhombic Pmna. The lattice parameters linearly decreased with increasing cobalt content, which confirmed the existence of solid solutions. It was clearly seen from the scanning electron microscopy observation that the LiCoxMn1−xPO4/C samples were agglomerates with approximately 100 nm primary particles. The LiCoxMn1−xPO4/C nanocomposites were used as cathode materials for lithium batteries, and electrochemical performance was comparatively investigated with cyclic voltammetry and galvanostatic charge–discharge test using the Li?1 M LiPF6 in EC:DMC = 1:1?LiCoxMn1−xPO4/C cells at room temperature. The cells at 0.05 C charge–discharge rate delivered first discharge capacities of 165 mAh g−1 (96% of theoretical capacity) at x = 0, 136 mAh g−1 at x = 0.2, 132 mAh g−1 at x = 0.5, 125 mAh g−1 at x = 0.8 and 132 mAh g−1 (79% of theoretical capacity) at x = 1.0, respectively. While the first discharge capacity increased with the cobalt content at high charge–discharge rates more than 0.5 C due to higher electronic conductivity of LiCoPO4 in comparison with LiMnPO4, the cycleability of cell became worse with increasing the amount of cobalt. The existence of Mn2+ seemed to enhance the cycleability of LiCoxMn1−xPO4/C nanocomposite cathode.  相似文献   

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