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1.
《Solid State Ionics》2006,177(17-18):1509-1516
The structural and thermal properties of the delithiated LixNi1/3Co1/3Mn1/3O2 (0 < x  1) material have been investigated by using diffraction and thermoanalytical techniques such as XRD and TG-DSC methods. XRD result shows that the delithiated materials maintain the O3-type structure with defined stoichiometric number at the range of 0.24 < x  1, exhibiting good crystal structural stability. The cobalt and nickel ions in the delithiated materials change their valence state (i.e. Co3+ to Co4+ and Ni3+ to Ni4+) when x < 0.49; the irreversible changes of the transformation may affect the first cycle of charge–discharge efficiency of the materials. A comparison of the results of TG-DSC with TPD-MS shows that the irreversible change of oxygen species during the delithiation process of LixNi1/3Co1/3Mn1/3O2 have great influence on the structural and thermal stability and reversibility of the materials.  相似文献   

2.
《Solid State Ionics》2006,177(9-10):893-900
M2Mn3O8 (M = Ca2+, Cu2+) compounds were synthesized and characterized in lithium cells. The M2+ cations, which reside in the van der Waals gaps between adjacent sheets of Mn3O84−, may be replaced chemically (by ion-exchange) or electrochemically with Li. More than 7 Li+/Cu2Mn3O8 may be inserted electrochemically, with concomitant reduction of Cu2+ to Cu metal, but less Li can be inserted into Ca2Mn3O8. In the case of Cu2+, this process is partially reversible when the cell is charged above 3.5 V vs. Li, but intercalation of Cu+ rather than Cu2+ and Li+/Cu+ exchange occurs during the subsequent discharge. If the cell potential is kept below 3.4 V, the Li in excess of 4 Li+/Cu2Mn3O8 can be cycled reversibly. The unusual mobility of + 2 cations in a layered structure has important implications both for the design of cathodes for Li batteries and for new systems that could be based on M2+ intercalation compounds.  相似文献   

3.
In the present work, high surface area mesoporous cobalt oxide (Co3O4) nanobelts have been synthesized by thermal treatment of cobalt hydroxide carbonate (CHC) precursors. CHC nanobelts were prepared by a facile hydrothermal method. Control experiments with variations in reaction time, solvent and different cobalt source revealed that temperature and sulfates are key factors in determining the formation of CHC nanobelts. Scanning electron microscopy and transmission electron microscopy images showed that the Co3O4 nanobelts consisted of mesoporous nanobelts with the average width of 40 nm. Brunauer–Emmett–Teller (BET) gas adsorption measurement further indicated that the products presented a rather large surface area (172.09 m2 g?1).  相似文献   

4.
《Solid State Ionics》2009,180(40):1613-1619
Materials of the LiTi2  xZrx(PO4)3 series (0  x  2) were prepared and characterized by powder X-ray (XRD) and neutron diffraction (ND), 7Li and 31P Nuclear Magnetic Resonance (NMR) and Electric Impedance techniques. In samples with x < 1.8, XRD patterns were indexed with the rhombohedral Rc space group, but in samples with x  1.8, XRD patterns display the presence of rhombohedral and triclinic phases. The Rietveld analysis of the LiTi1.4Zr0.6(PO4)3 neutron diffraction (ND) pattern provided structural information about intermediate compositions. For low Zr contents, compositions deduced from 31P MAS-NMR spectra are similar to nominal ones, indicating that Zr4+ and Ti4+ cations are randomly distributed in the NASICON structure. At increasing Zr contents, differences between nominal and deduced compositions become significant, indicating some Zr segregation in the triclinic phase. The substitution of Ti4+ by Zr4+ stabilizes the rhombohedral phase; however, electrical performances are not improved in expanded networks of Zr-rich samples. Below 300 K, activation energy of all samples is near 0.36 eV; however, above 300 K, activation energy is near 0.23 eV in Ti-rich samples and close to 0.36 eV in Zr-rich samples. The analysis of electrical data suggests that the amount of charge carriers and entropic terms are higher in Zr-rich samples; however, the increment of both parameters does not compensate lower activation energy terms of these samples. As a consequence of different contributions, the bulk conductivity of Zr-rich samples, measured at room temperature, is one order of magnitude lower than that measured in Ti-rich samples.  相似文献   

5.
Li2CO3 was used as the secondary lithium source for the synthesis of LiFePO4/C composites via a solid-state reaction method by adopting Li3PO4 as the main lithium source. The main purpose of using Li2CO3 is to compensate for the partial lithium loss during the sintering while reducing the usage of excess Li3PO4. In this study, the effects of Li2CO3 amount on the phase, structural and electrochemical properties of LiFePO4/C material were systematically investigated. The samples were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), constant-current charge–discharge test and cyclic voltammetry (CV). The results showed that by adding an appropriate amount of Li2CO3, the impurities, e.g. Li3PO4, normally appearing in the final product, could be excluded. It was found that LiFePO4/C with Li2CO3 in 6% excess (vs. stoichiometric LiFePO4) exhibited the best electrochemical performance, which delivered initial discharge capacities of 141.7, 125.2, 119.9 and 108.9 mAh g?1, respectively, at 0.5, 1, 2 and 5C rates. The capacity was reduced to 113.4 mAh g?1 after 50 cycles at 2C rate, with capacity retention rate of 94.6%.  相似文献   

6.
《Solid State Ionics》2006,177(11-12):1027-1031
LiNi0.8Co0.2O2 and Ca-doped LiNi0.8Co0.2O2 cathode materials were synthesized via a rheological phase reaction method. It is found that the Ca doping significantly improves reversible capacity, cycling performance, thermal stability and rate capability. The Ca-doped LiNi0.8Co0.2O2 cathode material maintains nearly its initial discharge capacity up to 100 cycles at room temperature. It also delivers an initial discharge capacity of 183 mA h g 1 and still keeps 131 mA h g 1 even after 120 cycles at 60 °C. These results, together with the X-ray diffraction and electrochemical impedance spectroscopy analysis, reveal that Ca2+ ions occupy Li+ ion sites to form CaLi defects and lithium vacancies (VLi′), which reduce the resistance and increases conductivity of LiNi0.8Co0.2O2.  相似文献   

7.
We report on studies of the structure and dynamics of the (0 0 1) surface of single crystal LiCu2O2, investigated by He beam scattering at room temperature, and with lattice-dynamical models. The best fit surface corrugation to measured diffraction patterns shows that the surface termination is exclusively a Li1+Cu2+O2? plane. Lattice dynamics fits to inelastic He scattering spectra reveal the presence of two low-lying surface phonon modes, identified with the motion of Cu2+, Li1+ surface ions normal to the surface.  相似文献   

8.
We report a systematic study of the layered lithium nitridocuprates Li3 ? xCuxN with 0.1  x  0.39. The structural data obtained from experimental XRD patterns, Rietveld refinements and unit cell parameters calculation vs x, indicate that copper (I) substitute interlayer lithium ions in the parent nitride Li3N to form the Li3 ? xCuxN compound without any Li vacancy in the Li2N? layer. Electrochemical results report Li insertion into the corresponding layered structures cannot take place in the 1.2/0.02 V voltage range as in the case of lithium into nitridonickelates and nitridocobaltates. However, in the initial charge process of Li3 ? xCuxN at 1.4 V leading to a specific capacity higher than 1000 mA h/g, the oxidation of copper and nitride ions is probably involved inducing a strong structural disordering process. As a consequence a new rechargeable electrochemical system characterized by discharge–charge potential of ≈ 0.3 V/1.2 V appears from the second cycle. Cycling experiments 0.02 V voltage/0.02 V range induce a complete destruction of the layered host lattice and the presence of Cu3N in the charge state suggests a conversion reaction. The capacity recovered in the 1.4/0.02 V range practically stabilizes around 500 mA h/g after 20 cycles.  相似文献   

9.
Single crystals of Li4 + xTi5O12 were prepared by means of electrochemical Li-ion intercalation technique using parent Li4Ti5O12 single crystals. The obtained Li4 + xTi5O12 (x = 1.35) crystallizes in the cubic spinel-related type structure, space group Fd3?m, and lattice parameters of a = 8.346(2) Å and V = 581.3(5) Å3 and Z = 8. The Li-ion intercalated sites were successfully determined to be both the 8a and 16c sites by using the difference Fourier synthesis map. The structure was determined by single-crystal X-ray structure analysis and refined to the conventional value of R = 3.7% for 132 independent observed reflections. The chemical composition has been determined to be Li5.35Ti5O12 from the result of site-population refinements. In addition, theoretical electron density distributions and total energy were calculated for three postulated compounds of “Li4.5Ti4.5O12” and “Li4.5 + xTi4.5O12” with x = 1.5 and 3.0.  相似文献   

10.
《Solid State Ionics》2006,177(9-10):851-855
The Li4Ti5O12/Ag composites were prepared by thermal decomposition of AgNO3 added to Li4Ti5O12 powders. The influence of the Ag contents and the mixing media on the particle size, morphology and electrochemical performance of Li4Ti5O12/Ag composites were investigated. The highest discharge capacity of the Li4Ti5O12/Ag composite reached at the 5 wt.% of Ag content. Compared with alcohol medium, distilled water as mixing medium presented the Li4Ti5O12/Ag composite with higher specific capacity and better cycling performance, leading to a reversible capacity after 50 cycles of 184.2 mAh/g with a capacity degradation of 3.31% compared to the second cycle at 2 C rate.  相似文献   

11.
《Solid State Ionics》2006,177(26-32):2705-2709
Lithium ions of perovskite-type lithium ion conductor La0.55Li0.35TiO3 were replaced by divalent Mg2+, Zn2+, and Mn2+ ions in an ion-exchange reaction using molten chlorides. The polycrystalline Mg-exchanged and Zn-exchanged samples are solid electrolytes for divalent Mg2+ and Zn2+ ions, whose dc ionic conductivities (σ = 2.0 × 10 6 S cm 1 at 558 K for the Mg-exchanged sample, La0.56(2)Li0.02(1)Mg0.16(1)TiO3.01(2) and σ = 1.7 × 10 6 S cm 1 at 708 K for the Zn-exchanged samples, La0.55(1)Li0.0037(2)Zn0.15(1)TiO2.98(2)) were compared to those of the known highest Mg2+ and Zn2+ inorganic solid electrolytes. The Mn-exchanged sample, then, showed paramagnetic behavior in the temperature range of 2 to 300 K. The Mn ions in the exchanged sample are divalent and the spin configuration is in high spin state (S = 5/2).  相似文献   

12.
《Solid State Ionics》2006,177(17-18):1489-1494
Ex situ vibrational spectra are recorded during the first discharge of LiTi2(PO4)3. Spectral changes are consistent with a two-phase model for the electrochemical insertion of Li+ ions. Differences in the frequencies and relative intensities of the LiTi2(PO4)3 and Li3Ti2(PO4)3 bands are due to changes in the effective force constants, dipole moment derivatives, and polarizability derivatives as Li+ is inserted into LiTi2(PO4)3. The intramolecular PO43− bending modes (ν2 and ν4) are found to be more sensitive to Li+ insertion than the intramolecular PO43− stretching modes (ν1 and ν3). This is because ν2 and ν4 are less localized than ν1 or ν3 and are more susceptible to small structural changes in the unit cell. Furthermore, a band at 487 cm 1 appears in the infrared spectrum of Li3Ti2(PO4)3. This band is assigned as a Li+ ion cage mode and is due to Li+ ions that occupy the M(3) and M′(3) sites in the Li3Ti2(PO4)3 structure. A small degree of band broadening is also detected in the vibrational spectra when Li+ ions are inserted, which might indicate some disordering in the cathode material.  相似文献   

13.
《Solid State Ionics》2006,177(26-32):2611-2615
Mechanical milling (MM) has been used to prepare the nanosized Li1.4Al0.4Ti1.6(PO4)3 (denoted LATP) glassy powders, which was converted into glass-ceramics through thermal treating at 700–1000 °C. The XRD, TEM, FESEM and ac impedance techniques were used to characterize the products. The results showed that completely amorphous products were prepared by MM for 40 h, and single-phase LiTi2(PO4)3-type structured glass-ceramics were obtained by further heat treatment. The lithium ion conductivity of the glass-ceramics increased with the growth of the crystalline phase and decrease of the grain size. The highest bulk conductivity (σb) of 1.09 × 10 3 S cm 1 with an energy of activation as low as 0.28 eV was obtained at room temperature for the specimen treated at 900 °C for 6 h. The high conductivity, easy fabrication and low cost make the LATP glass-ceramics promising to be used as inorganic solid electrolyte for all-solid-state Li-ion rechargeable batteries.  相似文献   

14.
《Solid State Ionics》2006,177(19-25):1803-1806
Defect chemistry for a mixed conductor, La0.6Sr0.4Co0.2Fe0.8O3−δ was studied. Samples were treated under controlled oxygen partial pressure, P(O2), conditions at 1273 K [10 11.1  P(O2)/atm  1], and cooled to room temperature. Oxygen nonstoichiometry and valences of transition metal ions for the treated samples were evaluated by iodometry and X-ray absorption spectroscopy, respectively. With decreasing P(O2), preferential reduction of Co3+ to Co2+ was observed, while iron preserved its higher valence above 3 under conditions studied. A dependency of its electrical conductivity on P(O2) was discussed along with a change in concentration of oxygen vacancies and mixed valences.  相似文献   

15.
Density functional theory calculations have been performed to investigate the structural and electronic properties of bulk Co2C and the stability of low index Co2C surfaces. We found that the formation of Co2C is exothermic with the formation energy of ? 0.81 eV/Co2C with respect to Co under the presence of syngas (mixture of CO and H2). While formed Co2C can be decomposed further to metal Co and graphite carbon with modest energy gain of 0.37 eV/Co2C. This suggests that Co2C is only metastable in Fischer–Tropsch synthesis, which agrees well with experimental findings. The density of states (DOSs) reveals that the Co2C is paramagnetic and strong metallic-like. The difference of charge density analysis indicates that the bond of Co2C is of the mixtures of metallic, covalent, and ionic properties. A variety of low index Co2C surfaces with different terminations are studied. We find that the surface energy of low index stoichiometric Co2C highly relies on the surface area, the number of coordination of surface atoms and the surface dipole, with the decreased stability order of (101) > (011) > (010) > (110) > (100) > (001) = (111). Our results indicate that under Co-poor condition, the formation of non ? stoichiometric surface (011) and (111) without terminated cobalt is energetically more favorable, while under Co-rich condition the formation of non ? stoichiometric (111) surface with cobalt overlayer are preferential.  相似文献   

16.
We report the significant enhancement of the power factor of Ca3Co4O9+δ through Yb doping. The pellets were prepared by pressing under 0.5 GPa and 2 GPa. The highest power factor of 553 μW m?1 K?2 due to the significant increase of electrical conductivity was obtained for Ca2.9Yb0.1Co4O9+δ pressed at 0.5 GPa. This is 2.3 times higher than that of Ca3Co4O9+δ (246 μW m?1 K?2). Nanostructure examinations show that the pellets pressed at 0.5 and 2 GPa have different nano-lamella structures. This work suggests that Yb is an effective doping element for enhancing the electrical transport properties of Ca3Co4O9+δ, and the optimum doping level is related to the nanostructure of the bulk pellets.  相似文献   

17.
Transparent glass–ceramics containing zinc–aluminum spinel (ZnAl2O4) nanocrystals doped with tetrahedrally coordinated Co2+ ions were obtained by the sol–gel method for the first time. The gels of composition SiO2–Al2O3–ZnO–CoO were prepared at room temperature and heat-treated at temperature ranging 800–950 °C. When the gel samples were heated up to 900 °C, ZnAl2O4 nanocrystals were precipitated. Co2+ ions were located in tetrahedral sites in ZnAl2O4 nanocrystals. X-ray diffraction analysis shows that the crystallite sizes of ZnAl2O4 crystal become large with the heat-treatment temperature and time, and the crystallite diameter is in the range of 10–15 nm. The dependence of the absorption and emission spectra of the samples on heat-treatment temperature were presented. The difference in the luminescence between Co2+ doped glass–ceramic and Co2+ doped bulk crystal was analysed. The crystal field parameter Dq of 423 cm−1 and the Racah parameters B of 773 cm−1 and C of 3478.5 cm−1 were calculated for tetrahedral Co2+ ions.  相似文献   

18.
《Solid State Ionics》2006,177(9-10):869-875
The electrochemical reduction of molten Li–Na–K carbonates at 450 °C provides “quasi-spherical” carbon nanoparticles with size comprised between 40 and 80 nm (deduced from AFM measurements). XRD analyses performed after washing and heat-treatment at various temperatures have revealed the presence of graphitised and amorphous phases. The d002 values were close to the ideal one obtained for pure graphite. Raman spectroscopy has pointed out surface disordering which increases with increasing temperature of the heat-treatment. The presence of Na and Li on the surface of the carbon powder has been evidenced by SIMS. The maximum Na and Li contents were observed for carbon samples heat-treated at 400 °C. Their electrochemical performances vs. the insertion/deinsertion of lithium cations were studied in 1 M LiPF6–EC : DEC : DMC (2 : 1 : 2). The first charge–discharge cycle is characterised by a high irreversible capacity as in the case of hard-disordered carbon materials. However, the potential profile in galvanostatic mode is intermediate between that usually observed for graphite and amorphous carbon: rather continuous charge–discharge curves sloping between 1.5 and 0.3 V vs. Li / Li+, and successive phase transformations between 0.3 and 0.02 V vs. Li / Li+. The best electrochemical performances were obtained with carbon powders heat-treated at 400 °C which exhibits a reversible capacity value of 1080 mAh g 1 (composition of Li2.9C6). This sample has also both the lowest surface disordering (deduced from Raman spectroscopy), and the highest Na and Li surface contents (deduced from SIMS).  相似文献   

19.
Novel spinel Li1.15Mn1.96Co0.03Gd0.01O4 + δ was synthesized by high temperature solid-state reaction method. The product was identified as well-defined spinel phase by X-ray diffraction (XRD); the SEM images illustrated that the particle distribution was well-proportioned. The initial special capacity was 126.5 and 128.1 mAh g? 1 at 25 and 50 °C. The fading rate was 0.017% and 0.098% per cycle under 0.5 °C at 25 and 50 °C, respectively. The results showed that Li1.15Mn1.96Co0.03Gd0.01O4 + δ displayed excellent capacity and cycleability.  相似文献   

20.
《Solid State Ionics》2006,177(9-10):885-892
Tri block-copolymer poly(iminoethylene)-b-poly(oxyethylene)-b-poly(iminoethylene) with a poly(oxyethylene) central block (PEI-b-PEO-b-PEI) were used as a “dual” matrix for polymer electrolytes having selectivity for hard cations (Li+/PEO) in one phase and for soft cations (Cu2+/PEI) in the other. Conductivity measurements were recorded for 20:1, 12:1 and 8:1 coordinating atom (O or/and N) to cation (Li+, Cu2+) ratios, for each of the three complexes studied: PEI-b-PEO-LiTFSI-b-PEI, PEI-Cu(TFSI)2-b-PEO-b-PEI-Cu(TFSI)2 and PEI-Cu(TFSI)2-b-PEO-LiTFSI-b-PEI-Cu(TFSI)2. For either low (20 °C) or high temperature (80 °C) the highest conductivity was given by the polymer electrolyte based on Cu(TFSI)2 with N/Cu2+ = 20:1 (10 6, respectively 2 × 10 4 S cm 1). In the present paper, the conductivity evolution is discussed in relation with the polymer structure, the type and the concentration of the salt and the thermal behavior of our systems.  相似文献   

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