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1.
To suppress the capacity fade of Li-rich Li1.2Ni0.13Co0.13Mn0.54O2 material as cathode materials for lithium-ion battery, we introduce a LiF coating layer on the surface to improve the cycling performance of Li1.2Ni0.13Co0.13Mn0.54O2 material. The modified sample shows a capacity of 163.2 mAh g?1 with a capacity retention of 95% after 100 cycles at a current density of 250 mA g?1, while the pristine sample only delivers a capacity of 129.9 mAh g?1 with a capacity retention of 82%. Compared with the pristine material, the LiF-modified sample exhibits an obvious enhancement in the electrochemical performance, which will be very beneficial for this material to be commercialized on the new energy vehicles and other related areas.  相似文献   

2.
Lithium-rich cathode materials Li1.2Ni0.13Co0.13Mn0.54O2 with (sample SF) and without (sample SP) formamide was synthesized by a spray-dry method. The crystalline structure and particle morphology of as-prepared materials were characterized by X-ray diffraction and scanning electron microscope. The specific surface area (SSA) of the Li1.2Ni0.13Co0.13Mn0.54O2 prepared from different routes was determined by a five-point Brunauer–Emmett–Teller (BET) method using N2 as absorbate gas. Being compared with the material synthesized without spray-drying process (sample CP), sample SP has much higher SSA. The additive formamide is helpful to form regular and solid precursor particles in spray-drying process, which results in a slightly aggregation of grains and reduction of SSA for sample SF. The electrochemical activities of the materials are closely related to their morphology and SSA. In the voltage range of 2–4.8 V at 25 °C, sample SP present a discharge capacity of 257 mAh g?1 at 0.1 C rate and 170 mAh g?1 at 1 C rate. The sample CP delivered only 136 mAh g?1 when discharged at 1 C rate. The elevated specific capacity and rate capability are attributed to smaller primary particle and higher SSA. Both cycle performance and rate capability of Li1.2Ni0.13Co0.13Mn0.54O2 were improved when formamide was used in spray-dry process. Discharge capacity of SF is 140.5 mAh g?1 at 2 C rate, and that of SP is 132.3 mAh g?1. Overlarge SSA of SP may provoke serious side reaction, so that its electrochemical performance was deteriorated.  相似文献   

3.
The layered Li1.2Mn0.54Ni0.13Co0.13O2 lithium-rich manganese-based solid solution cathode material has been synthesized by a simple solid-state method. The as-prepared material has a typical layered structure with R-3m and C2/m space group. The synthesized Li1.2Mn0.54Ni0.13Co0.13O2 has an irregular shape with the size range from 200 to 500 nm, and the primary particle of Li1.2Mn0.54Ni0.13Co0.13O2 has regular sphere morphology with a diameter of 320 nm. Electrochemical performances also have been investigated. The results show that the cathode material Li1.2Mn0.54Ni0.13Co0.13O2 prepared at 900 °C for 12 h has a good electrochemical performance, which can deliver a high initial discharge capacity of 233.5, 214.2, 199.3, and 168.1 mAh g?1 at 0.1, 0.2, 0.5, and 1 C, respectively. After 50 cycles, the capacity retains 178.0, 166.3, 162.1, and 155.9 mAh g?1 at 0.1, 0.2, 0.5, and 1 C, respectively. The results indicate that the simple method has a great potential in synthesizing manganese-based cathode materials for Li-ion batteries.  相似文献   

4.
Yttrium fluoride YF3 layer with different coating contents is successfully covered on the surface of Li1.2Mn0.54Ni0.13Co0.13O2 via a common wet chemical approach. The XRD, SEM, TEM, and charge-discharge tests are applied to investigate the influence of YF3 layer on the micro-structural, morphology, and electrochemical properties of Li1.2Mn0.54Ni0.13Co0.13O2. And the electrochemical test results demonstrate that the YF3-coated LMNCO samples exhibit the improved electrochemical properties. The 2wt.%YF3-coated LMNCO delivers a discharge capacity of 116.6 mAh g?1 at 5 C rate, much larger than that (95.6 mAh g?1) of the pristine one. Besides, the electrochemical impedance spectroscopy (EIS) and cyclic voltammetric results indicate that the YF3 coating layer can promote the optimization formation of SEI film and reversibility of the electrochemical redox.  相似文献   

5.
Lithium-rich cathode material Li[Li0.2Ni0.13Co0.13Mn0.54]O2 doped with trace Mo is successfully synthesized by a sol-gel method. The X-ray diffraction patterns show that trace Mo substitution increases the inter-layer space of the material, of which is benefiting to lithium ion insertion/extraction among the electrode materials. The (CV) tests demonstrate the decrease of polarization, and on the other hand, the lithium ion diffusion coefficient (D Li) of the modified material turns out to be larger, which indicates a faster electrochemical process. As a result, the Mo doped material possesses high rate performance and good cycling stability, and the initial discharge capacity reaches 149.3 mAh g?1 at a current density of 5.0 °C, and the residual capacity is 144.0 mAh g?1 after 50 cycles with capacity retention of 96.5 % in the potential range of 2.0–4.8 V at room temperature.  相似文献   

6.
The LaF3-coated Li[Li0.2Mn0.54Ni0.13Co0.13]O2 nanoparticles were synthesized via co-precipitation method followed by simple chemical deposition process. The crystal structure, particle morphology, and electrochemical properties of the bare and coated materials were studied by XRD, SEM, TEM, charge–discharge tests. The results showed that the surface coating on Li[Li0.2Mn0.54Ni0.13Co0.13]O2 nanoparticles were amorphous LaF3 layer with a thickness of about 10–30 nm. After the surface modification with LaF3 films, the coating layer served as a protective layer to suppress the side reaction between the positive electrode and electrolyte, and the Li[Li0.2Mn0.54Ni0.13Co0.13]O2 oxide demonstrated the improved electrochemical properties. The LaF3-coated Li[Li0.2Mn0.54Ni0.13Co0.13]O2 electrode delivered the capacities of 270.5, 247.9, 197.1, 170.0, 142.7, and 109.5 mAh g?1 at current rates of 0.1, 0.2, 0.5, 1, 2, and 5 C rate, respectively. Besides, the capacity retention was increased from 85.1 to 94.8 % after 100 cycles at 0.5 C rate. It implied surface modification with LaF3 played an important role to improve the cyclic stability and rate capacity of the Li-rich nickel manganese oxides.  相似文献   

7.
Layered lithium-enriched nickel manganese oxides Li1.2Ni0.2Mn0.6O2 have been synthesized and coated by fast ionic conductor Li3VO4 with varying amounts (1, 3, and 5 wt%) in this paper. The effect of Li3VO4 on the physical and electrochemical properties of Li1.2Ni0.2Mn0.6O2 has been discussed through the characterizations of X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscope (TEM), discharge, cyclic performance, rate capability, and electrochemical impedance spectroscopy (EIS). The discharge capacity and coulomb efficiency of Li1.2Ni0.2Mn0.6O2 in the first cycle have been improved after Li3VO4 coating. And, the 3 wt% Li3VO4-coated Li1.2Ni0.2Mn0.6O2 shows the best discharge capacity (246.8 mAh g?1), capacity retention (97.3 % for 50 cycles), and rate capability (90.4 mAh g?1 at 10 C). Electrochemical impedance spectroscopy (EIS) results show that the R ct of Li1.2Ni0.2Mn0.6O2 electrode decreases after Li3VO4 coating, which is due to high lithium ion diffusion coefficient of Li3VO4, is responsible for superior rate capability.  相似文献   

8.
The Li-rich cathode material Li[Li0.2Mn0.54Ni0.13Co0.13]O2 had been successfully synthesized by a carbonate coprecipitation method. The effects of substituting traces of Al element for different transitional metal elements on the crystal structure and surface morphology had been investigated by X-ray diffraction (XRD) and field emission scanning electron microscopy. The results revealed that all the materials showed similar XRD patterns and surface morphology. It was demonstrated that LNCMAl1 exhibited the superior electrochemical performance. The discharge capacity was 265.2 mAh g?1 at 0.1 C and still maintained a discharge capacity of 135.6 mAh g?1 at 5.0 C. The capacity retention could still be 58.2 and 66.8% after 50 cycles at 1.0 and 2.0 C, respectively. Electrochemical impedance spectra results proved that the remarkably improved rate capability and cycling performance could be ascribed to the low charge transfer resistance and enhanced reaction kinetics.  相似文献   

9.
The Li[Li0.2Mn0.54Ni0.13Co0.13]O2 coated with CeO2 has been fabricated by an ionic interfusion method. Both the bare and the CeO2-coated samples have a typical layered structure with R-3m and C2/m space group. The results of XRD and TEM images display that the CeO2 coating layer on the precursor could enhance the growth of electrochemically active surface planes ((010), (110), and (100) planes) in the following ionic interfusion process. The results of galvanostatic cycling tests demonstrate that the CeO2-coated sample has a discharge capacity of 261.81 mAh g?1 with an increased initial Coulombic efficiency from 62.4 to 69.1% at 0.05 °C compared with that of bare sample and delivers an improved capacity retention from 71.7 to 83.4% after 100 cycles at 1 °C (1 °C?=?250 mA g?1). The results of electrochemical performances confirm that the surface modification sample exhibits less capacity fading, lower voltage decay, and less polarization.  相似文献   

10.
Cr-doped layered oxides Li[Li0.2Ni0.2???x Mn0.6???x Cr2x ]O2 (x?=?0, 0.02, 0.04, 0.06) were synthesized by co-precipitation and high-temperature solid-state reaction. The materials were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), high-resolution transmission electron microscopy (TRTEM), X-ray photoelectron spectroscopy (XPS), and electrochemical impedance spectroscopy (EIS). XRD patterns and HRTEM results indicate that the pristine and Cr-doped Li1.2Ni0.2Mn0.6O2 show the layered phase. The Li1.2Ni0.16Mn0.56Cr0.08O2 shows the best electrochemical properties. The first discharge specific capacity of Li1.2Ni0.16Mn0.56Cr0.08O2 is 249.6 mA h g?1 at 0.1 C, while that of Li1.2Ni0.2Mn0.6O2 is 230.4 mA h g?1. The capacity retaining ratio of Li1.2Ni0.16Mn0.56Cr0.08O2 is 97.9% compared with 93.9% for Li1.2Ni0.2Mn0.6O2 after 80 cycles at 0.2 C. The discharge capacity of Li1.2Ni0.16Mn0.56Cr0.08O2 is 126.2 mA h g?1 at 5.0 C, while that of the pristine Li1.2Ni0.2Mn0.6O2 is about 94.5 mA h g?1. XPS results show that the content of Mn3+ in the Li1.2Ni0.2Mn0.6O2 can be restrained after Cr doping during the cycling, which results in restraining formation of spinel-like structure and better midpoint voltages. The lithium-ion diffusion coefficient and electronic conductivity of Li1.2Ni0.2Mn0.6O2 are enhanced after Cr doping, which is responsible for the improved rate performance of Li1.2Ni0.16Mn0.56Cr0.08O2.  相似文献   

11.
Layered cathode material Li1.2Ni0.2Mn0.6O2 has been synthesized using a coprecipitation method and coated by MnO2 with varying amounts (1, 3, 5, and 9 wt%). The physical properties and electrochemical performances of the materials are characterized by XRD, SEM, charge/discharge tests, cycle life, and rate capability tests. XRD patterns show that the pristine and coated Li1.2Ni0.2Mn0.6O2 powders exhibit layered structure. The discharge capacities and coulombic efficiencies of Li1.2Ni0.2Mn0.6O2 in the first cycle have been improved and increase with the increasing content of coated MnO2. The 9 wt% MnO2-coated Li1.2Ni0.2Mn0.6O2 delivers 287 mAhg?1 for the first discharge capacity and 86.7 % for the first coulombic efficiency compared with 228 mAhg?1 and 65.9 % for pristine Li1.2Ni0.2Mn0.6O2. However, the 5 wt% MnO2-coated Li1.2Ni0.2Mn0.6O2 shows the best capacity retention (99.9 % for 50 cycles) and rate capability (88.6 mAhg?1 at 10 C), while the pristine Li1.2Ni0.2Mn0.6O2 only shows 91.5 % for 50 cycles and 25.3 mAhg?1 at 10 C. The charge/discharge curves and differential capacity vs. voltage (dQ/dV) curves show that the coated MnO2 reacts with Li+ during the charge and discharge process, which is responsible for higher discharge capacity after coating. Electrochemical impedance spectroscopy results show that the R ct of Li1.2Ni0.2Mn0.6O2 electrode decreases after coating, which is responsible for superior rate capability.  相似文献   

12.
Zhaohui Tang  Xinhai Li  Zhixing Wang 《Ionics》2013,19(11):1495-1501
Li-rich Mn-based Li[Li0.09Mn0.65*(0.91???x) Ni0.35*(0.91???x) Al x ]O2 cathode materials have been prepared by traditional solid-state reaction. The lattice parameters a, c, and V have decreased, but c/a increased with the increase of Al doping. All the samples show analogy morphology of a quasi-spherical shape. Li[Li0.09Mn0.591Ni0.319]O2 sample shows a higher initial discharge capacity of 239.4 mAh?g?1 at 20 mA?g?1, while Li[Li0.09Mn0.582Ni0.314Al0.015]O2 sample presents a higher discharge capacity of 170.1 mAh?g?1 and ratio of 72.0 % with 200 vs. 20 mA?g?1. The solid electrolyte interface resistance (R SEI) and charge transfer process resistance (R ct ) values are relatively smaller for Al-doped samples than those of non-doped samples. Almost no reduction is observed after 24-time cycles in different discharge rates for the samples prepared.  相似文献   

13.
The layered Li-rich Mn-based cathode materials Li[Li0.2Mn0.54Ni0.13Co0.13]O2 were prepared by using co-precipitation technique at different temperatures, and their crystal microstructure and particle morphology were observed and analyzed by XRD and SEM. The electrochemical properties of these samples were investigated by using charge-discharge tests, electrochemical impedance spectroscopy (EIS), and cyclic voltammetry (CV), respectively. The results indicated that all samples are of high purity. When the precursors were co-precipitated at 50 °C, their cathode materials have the most uniform and full particles and exhibit the highest initial discharge capacity (289.4 mAh/g at 0.1C), the best cycle stability (capacity retention rate of 91.2 % after 100 cycles at 0.5C), and the best rate performance. The EIS results show that the lower charge transfer resistance of 50 °C sample is responsible for its superior discharge capacity and rate performance.  相似文献   

14.
The precursor of (Ni0.15Co0.15Mn0.7)CO3 has been synthesized by a carbonate precipitation method, which was used to prepare high-capacity cathode material Li1.2Ni0.12Co0.12Mn0.56O2 for lithium-ion batteries. Carbonate precipitation was conducted using NH4HCO3 solution as the precipitation reagent. Two different feeding ways were adopted during the precipitation process. The physical properties of the precursor and the resulting Li1.2Ni0.12Co0.12Mn0.56O2 were characterized in detail, and the electrochemical properties of the prepared Li1.2Ni0.12Co0.12Mn0.56O2 powers were evaluated. It was found that the structural and morphological properties of the precursor and the final material were effectively improved by the ordered addition method. Electrochemical studies confirmed that the Li1.2Ni0.12Co0.12Mn0.56O2 synthesized by ordered addition method exhibited a higher capacity of 287.3 mAh g?1, and the capacity retention after 30 cycles was 90.5 %.  相似文献   

15.
Mg-doped lithium-rich layered oxide Li1.2Mn0.54Ni0.13Co0.13O2 with smooth morphology is synthesized by co-precipitation followed by calcination. The morphologies of bare particles and electrodes have been studied through scanning electron microscopy (SEM), which illustrates that, compared with the Mg-doped particles, the pristine particles are characteristic of angular and corrosion is much more likely to happen. Additionally, the Mg substitution can make the crystal structure stable during the electrode process and then enhance the cycle performance. Electrochemical impedance spectroscopy and transmission electron microscopy have been utilized to gain insight to the properties of pristine and Mg-doped particles before and after the electrode process. Mg-doped particles show lower charge transfer resistance and higher diffusion coefficients (D) of the diffusing lithium ions. After 100 cycles at 250 mA g?1, the morphology and crystal structure of Mg-doped materials show smaller changes than those of pristine particles.  相似文献   

16.
Lithium-rich layered oxide Li1.2Ni0.16Co0.08Mn0.56O2 can be referred as a crystalline mixture of Li2MnO3 and LiNi0.4Co0.2Mn0.4O2 at equal molar ratio. In the paper, the solid state reaction of M(AC)2·4H2O (M = Mn, Co and Ni) and LiOH·H2O has been performed to obtain nanocrystalline Li1.2Ni0.16Co0.08Mn0.56O2 using a small molecular organic acid (i.e., oxalic acid (OA), citric acid (CA) or tartaric acid (TA)) as additive. The introduction of organic acids can help to improve the layered structure and inhibit the particle growth of Li1.2Ni0.16Co0.08Mn0.56O2, and the different organic acids exert distinct influences on the structural and electrochemical properties of Li1.2Ni0.16Co0.08Mn0.56O2. In detail, the nanoparticles obtained in the presence of OA have the smallest average size of 50–150 nm, which correspondingly exhibit the highest initial discharge capacity of 267.52 mAh g−1 at 0.1C and the best high-rate capability (e.g., 152.22 mAh g−1, 5C) when applied as a lithium ion battery cathode. Furthermore, the active substance obtained from TA shows the best cycling stability and a discharge capacity of 202.42 mAh g−1 can be retained after 50 cycles at 0.5C.  相似文献   

17.
Oligo(ethylene oxide)-functionalized trialkoxysilanes were synthesized through hydrosilylation reaction by reacting trialkoxysilane with oligo(ethylene oxide) allyl methyl ether using PtO2 as a catalyst. The physical properties of these compounds, such as viscosity, dielectric constant, and ionic conductivity, were characterized. Among them, [3-(2-(2-methoxyethoxy)ethoxy)-propyl]triethoxysilane (TESM2) exhibited a commercial viable ionic conductivity of 1.14 mS cm?1 and a wide electrochemical window of 5.2 V. A preliminary investigation was conducted by using TESM2 as an electrolyte solvent for high-voltage applications in lithium-ion batteries. Using 1 M LiPF6 in TESM2 with 1 vol% vinyl carbonate as an electrolyte, LiCoO2/Li half-cell delivered a specific capacity of 153.9 mAh g?1 and 90 % capacity retention after 80 cycles (3.0–4.35 V, 28 mA g?1); Li1.2Ni0.2Mn0.6O2/Li4Ti5O12 full cell exhibited the initial capacity of 161.3 mAh g?1 and 86 % capacity retention after 30 cycles (0.5–3.1 V, 18 mA g?1).  相似文献   

18.
Mg-doped-LMR-NMC (Li1.2Ni0.15-xMgxMn0.55Co0.1 O2) is synthesized by combustion method followed by fluorine doping by solid-state synthesis. In this approach, we substituted the Ni2+ by Mg2+ in varying mole percentages (x = 0.02, 0.05, 0.08) and partly oxygen by fluorine (LiF: LMR-NMC = 1:50 wt%). The synergistic effect of both magnesium and fluorine substitution on electrochemical performance of LMR-NMC is studied by electrochemical impedance spectroscopy and galvanostatic-charge-discharge cycling. Mg-F-doped LMR-NMC (Mg 0.02 mol) composite cathodes shows excellent discharge capacity of ~300 mAh g?1 at C/20 rate whereas pristine LMR-NMC shows the initial capacity around 250 mAh g?1 in the voltage range between 2.5 and 4.7 V. Mg-F-doped LMR-NMC shows lesser Ohmic and charge transfer resistance, cycles well, and delivers a stable high capacity of ~280 mAh g?1 at C/10 rate. The voltage decay which is the major issue of LMR-NMC is minimized in Mg-F-doped LMR-NMC compared to pristine LMR-NMC.  相似文献   

19.
Solid solution material Li1.2Ni0.16Co0.08Mn0.56O2 (0.5Li2MnO3?0.5LiNi0.4Co0.2Mn0.4O2) is obtained through rheological phase method and further treated in ammonium persulfate solution. The post-treatment significantly decreases the charging capacity above 4.5 V and enhances the columbic efficiency in the initial cycle. Along with the higher efficiency, the cycling stability and the rate capability both get improved. The improvement mechanism is investigated in terms of XRD, XPS, Raman spectrometry, and ICP-AES. The results confirm that (NH4)2S2O8 treatment leads to Li+ removal from Li2MnO3 component while the layered structure of the solid solution phase is well maintained. After being treated in 30% (NH4)2S2O8 solution, 95% columbic efficiency is observed on Li1.2Ni0.16Co0.08Mn0.56O2 in the first cycle and it also shows a near 200 mAh g?1 capacity at 4C current rate.  相似文献   

20.
(Ni0.6Co0.2Mn0.2)(OH)2 precursor has been successfully prepared using hydroxide co-precipitation method. The thermodynamic model of hydroxide co-precipitation with sodium DL-lactate as an eco-friendly chelating agent is proposed. The microstructures of (Ni0.6Co0.2Mn0.2)(OH)2 precursors and Li(Ni0.6Co0.2Mn0.2)O2 cathode materials are investigated using X-ray diffractometer and scanning electronic microscopy, while the electrochemical performances of Li(Ni0.6Co0.2Mn0.2)O2 cathode materials are measured using a charge–discharge test. The influences of pH value on the structure and morphological and electrochemical performances of Li(Ni0.6Co0.2Mn0.2)O2 cathode materials have been discussed in detail. The results show that the sample at pH?=?11.5 exhibits the best lamellar structure and lowest cation mixing, while the sample at pH?=?11.0 delivers the most uniform and full particles and possesses the highest initial charge–discharge performance of 183.4 mAh/g and the best coulombic efficiency of 77.9% at the voltage range of 3.0–4.3 V. Even after 100 cycles, its discharge capacity still remains 165.2 mAh/g with the best retention rate of 90.1%. Furthermore, the sample at pH?=?11.0 delivers the highest discharge capacity at each current density. Even if discharged at 5C (1000 mA/g), the capacity of 115.6 mAh/g has been achieved. The sample at pH?=?11.0 exhibits the highest Li-ion diffusion coefficients (2.072?×?10?12 cm2/s).  相似文献   

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