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1.
Carbon-coated LiFePO4 hollow nanofibers as cathode materials for Li-ion batteries were obtained by coaxial electrospinning. X-ray diffraction, scanning electron microscopy, transmission electron microscopy, Brunauer–Emmett–Teller specific surface area analysis, galvanostatic charge–discharge, and electrochemical impedance spectroscopy (EIS) were employed to investigate the crystalline structure, morphology, and electrochemical performance of the as-prepared hollow nanofibers. The results indicate that the carbon-coated LiFePO4 hollow nanofibers have good long-term cycling performance and good rate capability: at a current density of 0.2C (1.0C = 170 mA·g-1) in the voltage range of 2.5–4.2 V, the cathode materials achieve an initial discharge specific capacity of 153.16 mAh·g-1 with a first charge–discharge coulombic efficiency of more than 97%, as well as a high capacity retention of 99% after 10 cycles; moreover, the materials can retain a specific capacity of 135.68 mAh·g-1, even at 2C.  相似文献   

2.
LiNi0.5Mn1.5O4-δ which possesses a high voltage of 4.7 V vs.Li+/Li and stable structure has been considered as a promising cathode material for high energy Li-ion batteries.In this study,well-crystalli...  相似文献   

3.
SnCo alloy nanowires were successfully electrodeposited from SnCl2-CoCl2-1-ethyl-3-methylimidazolium chloride (EMIC) ionic liquid without a template. The nanowires were obtained from the molar ratio of 5:40:60 for SnCl2:CoCl2:EMIC at -0.55 V and showed a minimum diameter of about 50 nm and lengths of over 20 μm. The as-fabricated SnCo nanowires were about 70 nm in diameter and featured a Sn/Co weight ratio of 3.85:1, when used as an anode for a Li-ion battery, they presented respective specific capacities of 687 and 678 mAh·g-1 after the first charge and discharge cycle and maintained capacities of about 654 mAh·g-1 after 60 cycles and 539 mAh·g-1 after 80 cycles at a current density of 300 mA·g-1. Both the nanowire structure and presence of elemental Co helped buffer large volume changes in the Sn anode during charging and discharging to a certain extent, thereby improving the cycling performance of the Sn anode.  相似文献   

4.
通过简单的固相法和液相法,分别制备出石墨相氮化碳(g-C3N4)表面改性的商品化LiCoO2复合材料,采用扫描电子显微镜观察改性后的材料,发现g-C3N4都均匀地包裹在LiCoO2表面。两种g-C3N4-LiCoO2复合材料被用作锂离子电池的正极材料,电化学测试结果显示,固相法制得的g-C3N4-LiCoO2复合材料在0.2 C的倍率下充放电测试,首次比容量达167 mA·h·g-1,循环80次后,比容量仍达132 mA·h·g-1,高于未经g-C3N4包裹的纯LiCoO2(98 mA·h·g-1);液相法制得的Y-C3N4-LiCoO2复合材料循环稳定性明显优于同类材料,循环80次后容量保持率均在95%以上。试验证实,g-C3N4表面改性的策略具有一定的实用价值,改性后,材料优异的电化学性能归因于g-C3N4的包裹处理,这不仅增强了固体电解质界面(SEI)的稳定性,也抑制了锂离子嵌入/脱出电极材料时引起LiCoO2体积的变化。  相似文献   

5.
Lithium iron phosphate coated with carbon (LiFePO4/C) was synthesized by improved solid-state reaction using comparatively lower temperature and fewer sintering time. The carbon came from citric acid, which acted as a new carbon source. It was characterized by thermogravimetry and differential thermal analysis (TG/DTA), X ray diffractometer (XRD), Element Analysis (EA) and Scanning electron microscope (SEM). We also studied the electrochemical properties of the material. The first discharge capacity of the LiFePO4/C is 121 mAh·g−1 at 10 mA·g−1, at room temperature. When the current density increased to 100 mA·g−1, the first discharge capacity decreased to 110 mAh·g−1 and retained 95% of the initial capacity after 100 cycles. The LiFePO4/C obtained shows a good electrochemical capacity and cycle ability at a large current density. Foundation item: Supported by the National Natural Science Foundation of China (20071026) Biography: ZHOU Xin-wen (1980-), male, Master, research direction: inorganic material chemistry.  相似文献   

6.
A spherical-like Ni0.6Co0.2Mn0.2(OH)2 precursor was tuned homogeneously to synthesize LiNi0.6Co0.2Mn0.2O2 as a cathode material for lithium-ion batteries. The effects of calcination temperature on the crystal structure, morphology, and the electrochemical performance of the as-prepared LiNi0.6Co0.2Mn0.2O2 were investigated in detail. The as-prepared material was characterized by X-ray diffraction, scanning electron microscopy, laser particle size analysis, charge-discharge tests, and cyclic voltammetry measurements. The results show that the spherical-like LiNi0.6Co0.2Mn0.2O2 material obtained by calcination at 900℃ displayed the most significant layered structure among samples calcined at various temperatures, with a particle size of approximately 10 μm. It delivered an initial discharge capacity of 189.2 mAh·g-1 at 0.2C with a capacity retention of 94.0% after 100 cycles between 2.7 and 4.3 V. The as-prepared cathode material also exhibited good rate performance, with a discharge capacity of 119.6 mAh·g-1 at 5C. Furthermore, within the cut-off voltage ranges from 2.7 to 4.3, 4.4, and 4.5 V, the initial discharge capacities of the calcined samples were 170.7, 180.9, and 192.8 mAh·g-1, respectively, at a rate of 1C. The corresponding retentions were 86.8%, 80.3%, and 74.4% after 200 cycles, respectively.  相似文献   

7.
Highly uniform and tight adhering of Fe3O4 particles on carbon fiber film (Fe3O4/CFF) is achieved through a simple in-situ thermal oxidation method. Particularly, 3D CFF with interconnected structure can shorten transfer path and buffer the volume expansion during charge-discharge cycling. Herein, the obtained Fe3O4/CFF anode exhibits a stable cycling performance and excellent high rate capability. The cell delivers a reversible capacity of 1 711 mAh·g–1 at a current density of 100 mA·g–1 after 100 cycles. Even at a high rate density of 2 A·g–1, the specific capacity also can maintain 1 034 mAh·g–1 after 100 cycles. The simplified fabrication is featured with low-cost and this binder-free perspective holds great potential in mass-production of high-performance metal oxide electrochemical devices.  相似文献   

8.
In this work, we synthesized LaFeO3-xwt%Ni (x=0, 5, 10, 15) composites via a solid-state reaction method by adding Ni to the reactants, La2O3 and Fe2O3. Field-emission scanning electron microscopy (FE-SEM) and energy-dispersive X-ray spectroscopy (EDS) results revealed that Ni powders evenly dispersed among the LaFeO3 particles and apparently reduced their aggregation, which imparted the composites with a loose structure. Moreover, the Ni formed a conductive network, thus improving the conductivity of the composites. The maximum discharge capacity of the LaFeO3 electrodes remarkably increased from 266.8 mAh·g-1 (x=0) to 339.7 mAh·g-1 (x=10). In particular, the high-rate dischargeability of the LaFeO3-10wt%Ni electrode at a discharge current density of 1500 mA·g-1 reached 54.6%, which was approximately 1.5 times higher than that of the pure LaFeO3. Such a Ni-modified loose structure not only increased the charge transfer rate on the surface of the LaFeO3 particles but also enhanced the hydrogen diffusion rate in the bulk LaFeO3.  相似文献   

9.
Li_2MnSiO_4-based cathode materials possess reasonable work potentials and high theoretical capacities,while the practical energy/power densities are constrained by their inferior kinetics of Li~+ diffusion.In this work,the Pmn2_1-structure Li_2Fe_xMn_(1-x)SiO_4/C materials were synthesized via a solvothermal method and evaluated as Liion cathode materials,with notable morphological evolutions and tunable crystallographic habits observed after solvothermal process.The Li_2Fe_(0.33)Mn_(0.67)SiO_4/C material delivers an initial reversible capacity of 250.2mAh g~(-1)at 0.1 C(~1.51 Li~+insertion/extraction,1 C=166 mA g~(-1)),excellent high-rate capability(52.2 mAh g~(-1)at 5 C),and good long-term cyclability(64.6%after 196 cycles at 2 C).The enhanced electrochemical properties are attributed to the boosted ion/electron transports induced by preferred morphological and structural characteristics of Li_2Fe_(0.33)Mn_(0.67)SiO_4/C.  相似文献   

10.
A high-energy-density Li-ion battery with excellent rate capability and long cycle life was fabricated with a Ni-rich layered LiNi0.8Mn0.1Co0.1O2 cathode and SiO-C composite anode. The LiNi0.8Mn0.1Co0.1O2 and SiO-C exhibited excellent electrochemical performance in both half and full cells. Specifically, when integrated into a full cell configuration, a high energy density (280 Wh·kg-1) with excellent rate capability and long cycle life was attained. At 0.5C, the full cell retained 80% of its initial capacity after 200 charge/discharge cycles, and 60% after 600 cycles, indicating robust structural tolerance for the repeated insertion/extraction of Li+ ions. The rate performance showed that, at high rate of 1C and 2C, 96.8% and 93% of the initial capacity were retained, respectively. The results demonstrate strong potential for the development of high energy density Li-ion batteries for practical applications.  相似文献   

11.
近年来,过渡金属硫族化合物由于具有较高的理论比容量及特殊的层状结构,被认为有希望替代石墨作为下一代锂离子电池负极材料.作为典型的过渡金属硫族化合物,硒化钨(WSe_2)具有与石墨类似的二维层状结构,层间通过较弱的范德华力结合,方便锂离子嵌入和脱嵌.然而,在实际应用中,导电性差、循环过程中体积膨胀等问题制约了其进一步的发展.为了解决以上问题,本文经水热、退火等步骤,制备了将纳米棒状WSe_2锚定在掺氮三维石墨烯上的WSe_2@N-3DG复合材料.电化学测试表明,电流密度为2 A·g~(-1)时,复合材料循环500圈后放电比容量可以达到412 m Ah·g~(-1),在0.1,0.2,0.5,1和2 A·g~(-1)的电流密度下,WSe_2@N-3DG的放电比容量分别达到811,696,576,443和391 mAh·g~(-1),表现出优异的电化学性能.  相似文献   

12.
以无机盐为前体,采用溶胶-凝胶法制备了纳米SnO2粉体.用TG-DTA,XRD,SEM等对SnO2粉末进行了表征.结果表明,采用该法经500 ℃热处理得到的SnO2超细粉具有良好的四方结构,粒径分布均匀,平均粒径在92 nm左右.将该法制得的SnO2超细粉作为锂离子电池负极材料,可逆容量高达687 mAh·g-1,而且嵌脱锂电压低(0.2~0.5 V),是一种很有潜力的锂离子电池负极材料.  相似文献   

13.
Monoclinic phase LiFeSO_4F was synthesized by a simple fast solid state reaction from the mixture of FeSO_4·7H_2O and LiF pulverized by high energy ball milling.m-LiFeSO_4F was confirmed by GITT measurement to be a 3.9 V polyanion-type cathode materials for Li-ion batteries.Its electrochemical activity can be enhanced by addition of carbon.A discharge capacity of 105 mA·h/g (70%of theoretical value) was achieved for a m-LiFeSO_4F/CNT composite.Phase separation behavior during lithium extraction and inser...  相似文献   

14.
《科学通报(英文版)》2005,50(3):213-216
Lithium-ion batteries have become the main candi-date for rechargeable power sources in current electronicproducts because of their high open circuit voltage, highenergy density, longevity and absence of memory effect.Layered LiCoO2 has been used commerci…  相似文献   

15.
以水热合成的钴掺杂Mn3O4作为模板,通过固相反应制备尖晶石LiMn2O4。XRD谱图和SEM照片显示制备的LiMn2O4具有岩石状结构并呈现良好的结晶性,同时Co的引入能够引起LiMn2O4晶格的收缩。作为锂离子电池正极材料,Co含量的增加能够提高循环稳定性但降低材料放电比容量,3% Co掺杂的LiMn2O4在0.5 C的电流密度下,经过100次循环后,剩余放电比容量达101.6 mAh·g-1;在10 C的电流密度下,放电比容量可维持在81.0 mAh·g-1,优于未掺杂的LiMn2O4。这是由于Co的引入能够稳定LiMn2O4晶体结构并抑制循环中的姜-泰勒扭曲。  相似文献   

16.
Lithium metal anode with high theoretical capacity is considered to be one of the most potential anode materials of the next generation. However, the growth of lithium dendrite seriously affects the application of lithium metal anode and the development of lithium metal batteries (LMBs). Herein, an ultrathin Li3N film modified separator to homogenize the lithium ions and protect the lithium metal anode was reported. Due to the intrinsic properties of Li3N, the functional separator possessed good thermal stability, mechanical properties and electrolyte wettability, and the homogenization of the lithium ion was realized without increasing the interface impedance. With this functional separator, the Li/Li symmetrical cell could achieve a long cycle with low overpotential for 1000 ​h at a current density of 1 ​mA ​cm−2. Furthermore, when the full battery was assembled with LiFePO4 and the discharge capacity could be maintained at 151 mAh g−1 after 400 cycles at 1 ​C. In addition, the full battery also showed good rate performance, and provided a high discharge capacity of 114 mAh g−1 at 5 ​C.  相似文献   

17.
Using Mn(OH)2 as precursor, LiOH as lithiating agent and (NH4)2S2O8 as oxidant, layeredo-LiMnO2 was obtained by a novel method—in situ oxidation-intercalation under mild conditions (80 °C). The product was characterized by XRD, ICP, TEM and7Li-NMR. The results reveal that orthorhombic LiMnO2 with high purity and good crystallinity can be obtained by this method. During electrochemical tests, a LiMnO2/Li cell shows an initial reversible capacity of 208 mAh · g−1 and a reversible capacity of 180 mAh · g−1 after 30 cycles at room temperature.  相似文献   

18.
以Li_2CO_3和NH_4VO_3为原料,采用非熔融态的固相反应法合成了锂离子电池正极材料锂钒氧化物.通过TG-DTA,XRD分析确定了合成反应的主要历程.XRD测试表明,580℃焙烧10h获得的产物为单一相层状结构,晶型发育良好.循环伏安测试表明,Li~+在材料中嵌入脱出的机理不同,嵌入是分步进行的.恒电流充放电测试表明,锂钒氧化物的初始容量为252.9mAh.g-1,55次循环后容量保持率高达97.07%,循环性能优良.交流阻抗测试表明,材料具有较高的离子电导率,有利于提高其电化学性能.  相似文献   

19.
Well-crystallized MgFeSiO4 microparticles were synthesized at different temperatures by a simple molten salt method using KCl flux. As a new cathode for rechargeable magnesium batteries, the material shows a reversible Mg2+ intercalation-deintercalation process. In 0.25 mol/L Mg(AlCl2EtBu)2/THF electrolyte, MgFeSiO4 synthesized at 900??C can deliver a 125.1 mAh/g initial discharge capacity and a 91.4% capacity retention on the 20th cycle at a rate of 0.1C (about 15.6 mA/g). The results show that MgFeSiO4 could be a good host for Mg2+ intercalation, and a potential cathode material for high-energy rechargeable magnesium batteries.  相似文献   

20.
The poor cycling stability of antimony during a repeated sodium ion insertion and desertion process is the key issue, which leads to an unsatisfactory application as an anode material in a sodium-ion battery. Addressed at this, we report a facile two-step method to coat antimony nanoparticles with an ultrathin carbon layer of few nanometers (denoted Sb@C NPs) for sodium-ion battery anode application. This carbon layer could buffer the volume change of antimony in the charge-discharge process and improve the battery cycle performance. Meanwhile, this carbon coating could also enhance the interfacial stability by firmly connecting the sodium alginate binders through its oxygen-rich surface. Benefitted from these advantages, an improved initial discharge capacity (788.5?mA?h?g?1) and cycling stability capacity (553?mA?h?g?1 after 50 times cycle) have been obtained in a battery using Sb@C NPs as anode materials at 50?mA?g?1.  相似文献   

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