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1.
SnO2@ZnO was synthesized by a new method involving the immobilization of Sn onto zeolitic imidazolate framework-8 (ZIF-8) followed by calcination. The synthesized nanoparticles were characterized as 20–30 nm spherical ZnO particles uniformly dotted with SnO2. When SnO2@ZnO were used as anode material for Zn/Ni batteries, the average specific capacity was approximately 600 mAh g 1 and remained stable after 150 cycles at a rate of 1 C.  相似文献   

2.
We report the synthesis and characterization of SnO2@multiwalled carbon nanotubes (MWCNTs) nanocomposite as a high capacity anode material for sodium-ion battery. SnO2@MWCNT nanocomposite was synthesized by a solvothermal method. SEM and TEM analyses show the uniform distribution of SnO2 nanoparticles on carbon nanotubes. When applied as anode materials in Na-ion batteries, SnO2@MWCNT nanocomposite exhibited a high sodium storage capacity of 839 mAh g 1 in the first cycle. SnO2@MWCNT nanocomposite also demonstrated much better cycling performance than that of bare SnO2 nanoparticles and bare MWCNTs. Furthermore, the nanocomposite electrode also showed a good cyclability and an enhanced Coulombic efficiency on cycling.  相似文献   

3.
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   

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.
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   

6.
Net-structured NiO was prepared by urea-mediated homogeneous hydrolysis of Ni(CH3COO)2 under microwave radiation followed by a calcination at 500 °C. NiO–C nanocomposite was prepared by dispersing the as-prepared net-structured NiO in glucose solution and subsequent carbonization under hydrothermal conditions at 180 °C. The carbon in the composite was amorphous by the X-ray diffraction (XRD) analysis, and its content was 15.05 wt% calculated according to the energy dispersive X-ray spectroscopy (EDX) result. Transmission electron microscopy (TEM) image of the NiO–C nanocomposite showed that the NiO network was homogeneously filled by amorphous carbon. The reversible capacity of NiO–C nanocomposite after 40 cycles is 429 mAh g−1, much higher than that of NiO (178 mAh g−1). These improvements are attributed to the carbon, which can enhance the conductivity of NiO, suppress the aggregation of active particles, and increase their structure stability during cycling.  相似文献   

7.
Li(Ni1/3Co1/3Mn1/3)O2 microspheres with a tap density of 2.41 g cm−3 have been synthesized for applications in high power and high energy systems, using a simple rheological phase reaction route. Cyclic voltammograms (CV) showed no shift of anodic and cathodic peaks centred at 3.81, 3.69 V for the Ni2+/Ni4+ couple after first cycle. The results of power pulse area specific impedance (ASI) and differential scanning calorimetry (DSC) tests showed lower power impedance and increased thermal stability of the electrode at high rate. These merits mentioned above provided significant improved capacity and rate performance for Li(Ni1/3Co1/3Mn1/3)O2 microspheres, which 159, 147 mAh g−1 discharge capacity was delivered after 100 cycles between 2.5–4.6 V vs. Li at a different discharge rate of 2.5 C (500 mA g−1), 5 C and a constant 0.5 C charge rate, respectively.  相似文献   

8.
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   

9.
The bismuth nanosheets grown on carbon fiber cloth were designed. For sodium-ion batteries, the Bi/CFC electrode exhibited a high reversible capacity of 350 and 240 mAh g 1 after 300 cycles at 50 and 200 mA g 1, as well as a good rate capability. Besides, the electrode displayed two flat potential profiles during the charge/discharge process. The results suggest that the Bi/CFC electrode has excellent potential as an anode for sodium-ion batteries.  相似文献   

10.
LiCo1−xMgxPO4–graphitic carbon foam (LCMP–GCF with 0 ≤ x ≤ 0.1) composites are prepared by Pechini-assisted sol-gel method and annealed with the 2-steps annealing process (T = 300 °C for 5 min in flowing air, then at T = 730 °C for t = 12 h in flowing nitrogen). The XRD analysis, performed on powders reveals LiCoPO4 as major crystalline phase, Co2P and Co2P2O7 as secondary phases. The morphological investigation revealed the formation and growth of microcrystalline “islands” which consist of acicular crystallites with different dimensions (typically 5–50 μm). By addition of Mg-ions, CV-curves of LCMP–GCF composites show a decrease of the surface between anodic and cathodic sweeps by cycling and a stark contribution of faradaic processes due to the graphitic structured foam. The electrochemical measurements, at a discharge rate of C/10 at room temperature, show the decrease of the discharge specific capacity from 100 mAh g−1 for x = 0.0 to ∼35 mAh g−1 for 0.025 ≤ x ≤ 0.05, then an increase to 69 mAh g−1 for x = 0.1. The electrochemical impedance spectroscopy data reveal a decrease of the electrical resistance and the improvement of the Li-ion conductivity at high Mg-ions content into the LiCoPO4 phase (x ≥ 0.025).  相似文献   

11.
Si/C composites of carbon hollow structures loaded with Si nanoparticles (NPs) (Si/C-HSs) were prepared by one-step pyrolysis of a mixture of Si NPs and expandable microspheres (EMs). For the Si/C-HSs, hollow carbon shells with rough surfaces were formed by directly carbonizing the polymer shells of EMs, and the Si NPs fell into the void space or were loaded on the rough surfaces of the carbon shells. The EM-based carbon shells accommodated the volume expansion of the Si NPs and improved the electrical conductivity of the composites. As a result, the Si/C-HSs exhibited a high capacity (initial reversible capacity: 854.4 mAh g 1 at 300 mA g 1), stable cycling performance (capacity retention: 80% after 50 cycles), and excellent rate capability.  相似文献   

12.
Li4Ti5O12/reduced graphene oxide (RGO) composites were prepared via a simple strategy. The as-prepared composites present Li4Ti5O12 nanoparticles uniformly immobilized on the RGO sheets. The Li4Ti5O12/RGO composites possess excellent electrochemical properties with good cycle stability and high specific capacities of 154 mAh g 1 (at 10C) and 149 mAh g 1 (at 20C), much higher than the results found in other literatures. The superior electrochemical performance of the Li4Ti5O12/RGO composites is attributed to its unique hybrid structure of conductive graphene network with the uniformly dispersed Li4Ti5O12 nanoparticles.  相似文献   

13.
We report the electrochemical performance of carbon-coated TiO2 nanobarbed fibers (TiO2@C NBFs) as anode material for lithium-ion batteries. The TiO2@C NBFs are composed of TiO2 nanorods grown on TiO2 nanofibers as a core, coated with a carbon shell. These nanostructures form a conductive network showing high capacity and C-rate performance due to fast lithium-ion diffusion and effective electron transfer. The TiO2@C NBFs show a specific reversible capacity of approximately 170 mAh g 1 after 200 cycles at a 0.5 A g 1 current density, and exhibit a discharge rate capability of 4 A g 1 while retaining a capacity of about 70 mAh g 1. The uniformly coated amorphous carbon layer plays an important role to improve the electrical conductivity during the lithiation–delithiation process.  相似文献   

14.
A VO2 · 0.43H2O powder with a flaky particle morphology was synthesized via a hydrothermal reduction method. It was characterized by scanning electron microscopy, electron energy loss spectroscopy, and thermogravimetric analysis. As an electrode material for rechargeable lithium batteries, it was used both as a cathode versus lithium anode and as an anode versus LiCoO2, LiFePO4 or LiNi0.5Mn1.5O4 cathode. The VO2 · 0.43H2O electrode exhibits an extraordinary superiority with high capacity (160 mAh g?1), high energy efficiency (95%), excellent cyclability (142.5 mAh g?1 after 500 cycles) and rate capability (100 mAh g?1 at 10 C-rate).  相似文献   

15.
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   

16.
NiCo2O4 nanosheets supported on Ni foam were synthesized by a solvothermal method. A composite of NiCo2O4 nanosheets/Ni as a carbon-free and binder-free air cathode exhibited an initial discharge capacity of 1762 mAh g 1 with a low polarization of 0.96 V at 20 mA g 1 for sodium–air batteries. Na2O2 nanosheets were firstly observed as the discharged product in sodium–air battery. High electrocatalytic activity of NiCo2O4 nanosheets/Ni made it a promising air electrode for rechargeable sodium–air batteries.  相似文献   

17.
Graphitized carbon nanofibers are prepared from 2-propanol at 673 K by spray pyrolysis in which dc high voltage is applied to the spray nozzle. A mixture of helical and straight carbon nanofibers is observed, and their diameters are ca. 100–300 nm. The resultant carbon nanofibers show large capacity of around 340 mAh g−1 and high reversibility with little hysteresis after the 2nd cycle in insertion/extraction reactions of lithium-ion, while a large irreversible capacity of 400 mAh g−1 is observed at potentials below 0.9 V in the 1st cycle.  相似文献   

18.
A novel porous sulfur cathode in which a gelatin was used as the binder was prepared by using a freeze–drying method at −58 °C. The porous structure provides channels for electrolyte infiltration and then facilitates ion diffusion. This porous sulfur cathode has a high initial capacity of 1235 mAh g−1 and a high reversible capacity of 626 mAh g−1 after 50 cycles, both of which are higher than that of the normal cathodes with compact structures.  相似文献   

19.
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   

20.
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   

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