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1.
Hydrous vanadium oxide (denoted as VOx·yH2O) deposited at 0.4 V shows promising capacitive behavior in aqueous media containing concentrated Li ions. VOx·yH2O annealed in air at 300 °C for 1 h shows highly reversible Li-ion intercalation/de-intercalation behavior with specific capacitance reaching ca. 737 and 606 F g? 1 at 25 and 500 mV s? 1 in 12 M LiCl between ?0.2 and 0.8 V. In 14 M LiCl, retention of specific capacitance is about 95% when the scan rate is increased from 25 to 500 mV s? 1. This work is the first report showing the ultrahigh rate of Li-ion intercalation/de-intercalation in VOx·yH2O. A so-called Li-ion supercapacitor of the asymmetric type consisting of a VOx.yH2O cathode and a WO3.zH2O anode is proposed here.  相似文献   

2.
A B2O3-doped SnO2 thin film was prepared by a novel experimental procedure combining the electrodeposition and the hydrothermal treatment, and its structure and electrochemical properties were investigated by scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray diffraction (XRD) analysis, energy dispersive X-ray (EDX) spectroscopy and galvanostatic charge–discharge tests. It was found that the as-prepared modified SnO2 film shows a porous network structure with large specific surface area and high crystallinity. The results of electrochemical tests showed that the modified SnO2 electrode presents the largest reversible capacity of 676 mAh g?1 at the fourth cycle, close to the theoretical capacity of SnO2 (790 mAh g?1); and it still delivers a reversible Li storage capacity of 524 mAh g?1 after 50 cycles. The reasons that the modified SnO2 film electrode shows excellent electrochemical properties were also discussed.  相似文献   

3.
An interwoven core–shell structured Ni/NiO anode for lithium ion batteries was created by a simple oxidation of Ni foam. As-prepared configuration has a high specific discharge capacity of 701 mAh g?1 at the 2nd cycle. Its electrochemical performance at subsequent cycles shows good energy capacity of 646 mAh g?1 at the 65th cycle as well as good rate capability. The porous core–shell structure not only buffers the volume change during cycling but also effectively increases the contact among anode, current collector and electrolyte. The small contact resistance between NiO and Ni facilitates enhanced intrinsic kinetics from conversion reaction.  相似文献   

4.
Nano-sized nickel ferrite (NiFe2O4) was prepared by hydrothermal method at low temperature. The crystalline phase, morphology and specific surface area (BET) of the resultant samples were characterized by X-ray diffraction (XRD), transmission electron microscopy (TEM), high-resolution transmission electron microscopy (HRTEM) and nitrogen physical adsorption, respectively. The particle sizes of the resulting NiFe2O4 samples were in the range of 5–15 nm. The electrochemical performance of NiFe2O4 nanoparticles as the anodic material in lithium ion batteries was tested. It was found that the first discharge capacity of the anode made from NiFe2O4 nanoparticles could reach a very high value of 1314 mAh g−1, while the discharge capacity decreased to 790.8 mAh g−1 and 709.0 mAh g−1 at a current density of 0.2 mA cm−2 after 2 and 3 cycles, respectively. The BET surface area is up to 111.4 m2 g−1. The reaction mechanism between lithium and nickel ferrite was also discussed based on the results of cycle voltammetry (CV) experiments.  相似文献   

5.
Using a micro-patterned Si plate, a Li secondary cell was assembled and tested for its electrochemical properties. A micro-patterned Si plate was made by photolithography. This was followed by Pt coating and Li deposition. With a non-lithiated LiV3O8 cathode, a Li-deposited micro-patterned Si anode was assembled as a secondary cell. The cell exhibited an initial charge/discharge capacity of about 220 mAh g? 1 at a current density of 0.1 C-rate and it continued for more than 100 cycles without failure. The morphologies of Li deposition/dissolution in the anode were observed via scanning electron microscopy (SEM). Dendrite behavior of the Li metal was not observed on the anode during the cyclic process.  相似文献   

6.
Core-shell Cu2O/Cu composites were successfully prepared by over-reduction of aqueous CuSO4 with hydrazine hydrate as reductant. Field emission scanning electron microscopy (SEM) and high resolution transmission electron microscopy (HRTEM) clearly illuminate that the core is Cu2O with 400 nm in diameter, and the shell is Cu with about 50 nm in thickness. The core-shell Cu2O/Cu exhibited weaker polarization and higher coulombic efficiency than pure octahedral Cu2O, especially in the initial stage of cycles. After 50 cycles, the reversible capacity of Cu2O/Cu (360 mAh g?1) was much higher than that of pure Cu2O (160 mAh g?1). The improvement of electrochemical properties is attributed to the core-shell structure of Cu2O/Cu and the catalytic effect of Cu on the decomposition of Li2O during the charging process.  相似文献   

7.
Lithium insertion into various iron vanadates has been investigated. Fe2V4O13 and Fe4(V2O7)3 · 3H2O have discharge capacities approaching 200 mAh g−1 above 2.0 V vs. Li+/Li. Although the potential profiles change significantly between the first and subsequent discharges, capacity retention is unexpectedly good. Other phases, structurally related to FeVO4, containing copper and/or sodium ions were also studied. One of these, β-Cu3Fe4(VO4)6, reversibly consumes almost 10 moles of electrons per formula unit (ca. 240 mAh g−1) between 3.6 and 2.0 V vs. Li+/Li, in a non-classical insertion process. It is proposed that both copper and vanadium are electrochemically active, whereas iron(III) reacts to form LiFeIIIO2. The capacity of the Cu3Fe4(VO4)6/Li system is nearly independent of cycling rate, stabilizing after a few cycles at 120–140 mAh g−1. Iron vanadates exhibit better capacities than their phosphate analogues, whereas the latter display more constant discharge potentials.  相似文献   

8.
Porous SnO2 nanotubes were prepared via electrospinning followed by calcination in air. As anode materials for lithium ion batteries, the porous nanotubes delivered a high discharge capacity of 807 mAh g? 1 after 50 cycles. Even after cycled at high rates, the electrode still retained a high fraction of its theoretical capacity. Such excellent performances of porous SnO2 nanotubes could be attributed to the porous and hollow structure which facilitated liquid electrolyte diffusion into the bulk materials and buffered large volume changes during lithium ions insertion/extraction. Furthermore, the nanoparticles of nanotubes provided the shorter diffusion length for lithium ions insertion which benefited in retaining the structural stability and good rate performance. Our results demonstrated that this simple method could be extended for the synthesis of porous metal oxide nanotubes with high performances in the applications of lithium ion batteries and other fields.  相似文献   

9.
LiFe1/3Mn1/3Co1/3PO4/C solid solution was prepared via a poly(ethylene glycol) assisted sol–gel method and exploited as cathode materials for lithium ion batteries. X-ray diffraction patterns indicate that LiFe1/3Mn1/3Co1/3PO4/C is crystallized in an orthorhombic structure. The scanning electron microscopy and transmission electron microscopy show that the particles are about 200 nm with a uniform carbon coating of about 8 nm in thickness to form a core–shell nanostructure. During charge–discharge cycles, LiFe1/3Mn1/3Co1/3PO4/C presented three plateaus corresponding to Fe3+/Fe2+, Mn3+/Mn2+ and Co3+/Co2+ redox couples, and a discharge capacity of 150.8 mAh g?1 in the first cycle, remaining 121.2 mAh g?1 after 30 cycles. Core–shell structure can optimize the performances of polyoxoanionic materials for lithium ion batteries.  相似文献   

10.
A new ternary Sn–Ni–P alloy rods array electrode for lithium-ion batteries is synthesized by electrodeposition with a Cu nanorods array structured foil as current collector. The Cu nanorods array foil is fabricated by heat treatment and electrochemical reduction of Cu(OH)2 nanorods film, which is grown directly on Cu substrate through an oxidation method. The Sn–Ni–P alloy rods array electrode is mainly composed of pure Sn, Ni3Sn4 and Ni–P phases. The electrochemical experimental results illustrate that the Sn–Ni–P alloy rods array electrode has high reversible capacity and excellent coulombic efficiency, with an initial discharge capacity and charge capacity of 785.0 mAh g?1 and 567.8 mAh g?1, respectively. After the 100th discharge–charge cycling, capacity retention is 94.2% with a value of 534.8 mAh g?1. The electrode also performs with an excellent rate capacity.  相似文献   

11.
Sulfone-based electrolytes have been investigated as electrolytes for lithium-ion cells using high-voltage positive electrodes, such as LiMn2O4 and LiNi0.5Mn1.5O4 spinels, and Li4Ti5O12 spinel as negative electrode. In the presence of imide salt (LiTFSI) and ethyl methyl sulfone or tetramethyl sulfone (TMS) electrolytes, the Li4Ti5O12/LiMn2O4 cell exhibited a specific capacity of 80 mAh g?1 with an excellent capacity retention after 100 cycles. In a cell with high-voltage LiNi0.5Mn1.5O4 positive electrode and 1 M LiPF6 in TMS as electrolyte, the capacity reached 110 mAh g?1 at the C/12 rate. When TMS was blended with ethyl methyl carbonate, the Li4Ti5O12/LiNi0.5Mn1.5O4 cell delivered an initial capacity of 80 mAh g?1 and cycled fairly well for 1000 cycles under 2C rate. The exceptional electrochemical stability of the sulfone electrolytes and their compatibility with the Li4Ti5O12 safer and stable anode were the main reason behind the outstanding electrochemical performance observed with high-potential spinel cathode materials. These electrolytes could be promising alternative electrolytes for high-energy density battery applications such as plug-in hybrid and electric vehicles that require a long cycle life.  相似文献   

12.
Hierarchically ordered porous nickel oxide array film was prepared by electrodeposition through monolayer polystyrene spheres template. The as-prepared film had a highly porous structure of interconnected macrobowls array possessing nanopores. As anode material for lithium ion batteries, the porous array NiO film exhibited weaker polarization, higher coulombic efficiency and better cycling performance in comparison with the dense NiO film. After 50 cycles, the discharge capacity of porous array NiO film was 518 mAh g? 1 at 1 C rate, higher than that of the dense NiO film (287 mAh g? 1). The enhancement of the electrochemical properties was due to the unique hierarchical porous architecture, which provided fast ion/electron transfer and alleviated the structure degradation during the cycling process.  相似文献   

13.
This paper reports the microwave-assisted synthesis of Co3O4 nanomaterials with different morphologies including nanoparticles, rod-like nanoclusters and macroporous platelets. The new macroporous platelet-like Co3O4 morphology was found to be the best suitable for reversible lithium storage properties. It displayed superior cycling performances than nanoparticles and rod-like nanoclusters. More interestingly, excellent high rate capabilities (811 mAh g?1 at 1780 mA g?1 and 746 mAh g?1 at 4450 mA g?1) were observed for macroporous Co3O4 platelet. The good electrochemical performance could be attributed to the unique macroporous platelet structure of Co3O4 materials.  相似文献   

14.
A LiMnPO4/C composite cathode was prepared by a combination of spray pyrolysis and wet ball milling. The cathode showed stable performance at various cutoff voltages up to 4.9 V. The cutoff voltage increase up to 4.9 V allowed the achievement of a high discharge capacity in galvanostatic charge–discharge tests. The discharge capacities of 153 mAh g?1 at 0.05 C and 149 mAh g?1 at 0.1 C were achieved at room temperature; the trickle-mode discharge capacities at room temperature were 132, 120 and 91 mAh g?1 at 0.1, 1 and 5 C discharge rates, respectively. The cell exhibited a good rate capability in the galvanostatic cycling up to 5 C discharge rates at both ambient temperature and 50 °C.  相似文献   

15.
Nanocrystalline MnO thin film has been prepared by a pulsed laser deposition (PLD) method. The reversible lithium storage capacity of the MnO thin film electrodes at 0.125C is over 472 mAh g?1 (3484 mAh cm?3) and can be retained more than 90% after 25 cycles. At a rate of 6C, 55% value of the capacity at 0.125C rate can be obtained for both charge and discharge. As-prepared MnO thin film electrodes show the lowest values of overpotential for both charge and discharge among transition metal oxides. All these performances make MnO a promising high capacity anode material for Li-ion batteries.  相似文献   

16.
In this work, a room temperature solid-state rechargeable sodium ion cell, consisting of a ceramic Na-β″-Al2O3 thin film as the electrolyte, a NaTi2(PO4)3 gel composite as the cathode and sodium metal as the anode, was developed for the first time. A dense Na-β″-Al2O3 thin film with a thickness of approximately 100 μm was obtained by non-toxic and hazard-free ceramic fabrication processes, including tape-casting and subsequent sintering. The solid-state sodium ion cell had a working window of 1.5–2.5 V upon charge-discharge processes and exhibited an extremely stable voltage plateau of approximately 2.1 V. A reversible capacity, based on the NaTi2(PO4)3 cathode, of 133 mAh g 1 was observed during the first cycle, which remained approximately 100 mAh g 1 after 50 cycles.  相似文献   

17.
A simple, cheap and versatile, polyol-mediated fabrication method has been extended to the synthesis of tin oxide nanoparticles on a large scale. Ultrafine SnO2 nanoparticles with crystallite sizes of less than 5 nm were realized by refluxing SnCl2 · 2H2O in ethylene glycol at 195 °C for 4 h under vigorous stirring in air. The as-prepared SnO2 nanoparticles exhibited enhanced Li-ion storage capability and cyclability, demonstrating a specific capacity of 400 mAh g−1 beyond 100 cycles.  相似文献   

18.
All-solid-state phosphate symmetric cells using Li3V2(PO4)3 for both the positive and negative electrodes with the phosphate Li1.5Al0.5Ge1.5(PO4)3 as the solid electrolyte were proposed. Amorphous Li1.5Al0.5Ge1.5(PO4)3 was added into the electrode to increase the interface area between the active materials and the electrolyte. Any other phases were not formed at the electrode/electrolyte interface even after hot pressing at 600 °C. The discharge capacity was 92 mAh g? 1 at 22 µA cm? 2 at 80 °C, and 38 mAh g? 1 at 25 °C, respectively. Symmetric cell configuration leads to simplify the fabrication process for all-solid-state batteries and will reduce manufacturing costs.  相似文献   

19.
Lorentz force theory demonstrates that electric current density and magnetic force are proportional, indicating that they compensate each other. In a battery operated at high magnetic forces, the electrons in the active material move fast in a specific magnetic field. γ-Fe2O3, a highly magnetic material, is used to prepare LiFePO4 electrodes to study the effect of the Lorentz force on lithium-ion battery performance. The magnetic field created by γ-Fe2O3 induces magnetic forces on the charged LiFePO4 particles, accelerating electron movement. Superconducting quantum interference measurements reveal that saturation magnetization and remanence are prominent when γ-Fe2O3 is added to the LiFePO4 electrodes. The LiFePO4 electrode containing 15 wt% γ-Fe2O3 led to superior battery capacity (69.8 mAh g 1 at 10C) compared with the pure LiFePO4 electrode (1.8 mAh g 1 at 10C). In this study, Lorentz force theory is applied to improve the specific capacity and cycle life at high current rates of a battery containing LiFePO4 cathode materials, suggesting that incorporating γ-Fe2O3 into the cathode is an easy and cheap strategy for increasing the power density and cycle life of lithium-ion batteries.  相似文献   

20.
A disordered rocksalt Li-excess cathode material, Li1.25Nb0.25Mn0.5O2, was synthesized and investigated. It shows a large initial discharge capacity of 287 mAh g 1 in the first cycle, which is much higher than the theoretical capacity of 146 mAh g 1 based on the Mn3+/Mn4+ redox reaction. In situ X-ray diffraction (XRD) demonstrates that the compound remains cation-disordered during the first cycle. Electron energy loss spectroscopy (EELS) suggests that Mn and O are likely to both be redox active, resulting in the large reversible capacity. Our results show that Li1.25Nb0.25Mn0.5O2 is a promising cathode material for high capacity Li-ion batteries and that reversible oxygen redox in the bulk may be a viable way forward to increase the energy density of lithium-ion batteries.  相似文献   

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