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1.
Layered LiNi0.5Mn0.5 ? xAlxO2 (x = 0, 0.02, 0.05, 0.08, and 0.1) series cathode materials for lithium-ion batteries were synthesized by a combination technique of co-precipitation and solid-state reaction, and the structural, morphological, and electrochemical properties were examined by XRD, FT-IR, XPS, SEM, CV, EIS, and charge–discharge tests. It is proven that the aliovalent substitution of Al for Mn promoted the formation of LiNi0.5Mn0.5 ? xAlxO2 structures and induced an increase in the average oxidation number of Ni, thereby leading to the shrinkage of the lattice volume. Among the LiNi0.5Mn0.5 ? xAlxO2 materials, the material with x = 0.05 shows the best cyclability and rate ability, with discharge capacities of 219, 169, 155, and 129 mAh g? 1 at 10, 100, 200, and 400 mA g? 1 current density respectively. Cycled under 40 mA g? 1 in 2.8–4.6 V, LiNi0. 5Mn0.45Al0.05O2 shows the highest discharge capacity of about 199 mAh g? 1 for the first cycle, and 179 mAh g? 1 after 40 cycles, with a capacity retention of 90%. EIS analyses of the electrode materials at pristine state and state after first charge to 4.6 V indicate that the observed higher current rate capability of LiNi0. 5Mn0.45Al0.05O2 can be understood due to the better charge transfer kinetics.  相似文献   

2.
The transition metal-doped spinel cathode materials, LiM0.5Mn1.5O4 (M=Ni. Co, Cr) were prepared by solid-state reaction. The structure and morphology of the samples were investigated by X-ray diffraction, Rietveld refinement and scanning electron microscopy (SEM). The diffraction peaks of all the samples corresponded to a single phase of cubic spinel structure with a space group Fd3m. Field-emission SEM shows octahedron like shapes and the primary particles size was between 500 nm and 2 μm. Oxidation states of Ni, Co and Cr were found to be 2+, 2+ and 3+ as revealed by X-ray photoelectron spectroscopy. During discharging, LiNi0.5Mn1.5O4 and LiCo0.5Mn1.5O4 sample shows more than 130 mAh/g between 3.5 and 5.2 V at a current density of 0.65 mA/cm2 and well developed plateau around 5 V, respectively.  相似文献   

3.
《Solid State Ionics》2006,177(19-25):1799-1802
Manganese-doped ceria-based oxides, Ce1−xMnxO2−δ (0.05  x  0.3) and Ce1−xyGdxMnyO2−δ˙ (0.05  x 0.2, 0.05  y  0.25) were synthesized, and crystal phase analysis by XRD and measurements of electrical properties were performed. Solubility limit of Mn in Ce1−xMnxO2−δ˙ seemed to be between 5 mol% and 10 mol% and Mn3O4 was the main by-product above the solubility limit in the case of heat treatment at 1300 °C. Judging from the oxygen partial pressure dependence of total conductivity and emf measurements, Ce1−xMnxO2−δ˙ is a single-phase mixed conductor within the composition below the solubility limit, and when the composition of Mn exceeds the solubility limit, it becomes the dual-phase mixed conductor of Ce1−xMnxO2−δ˙ and Mn3O4. The doing of Mn in gadlia-doped ceria, Ce1−xyGdxMnyO2−δ˙ (0.05  x  0.2, 0.05  y  0.25), was more difficult than that in CeO2 presumably due to the preferential reaction between Gd and Mn to give GdMnO3 to the GDC solid solution formation, and the Mn doping seems not to be so effective in preparing the mixed ionic–electronic conductor based on GDC.  相似文献   

4.
《Solid State Ionics》2006,177(17-18):1483-1488
LiMn2O4 and LiM0.05Mn1.95O4 (M = Ni, Fe and Ti) were synthesized by using solid-state reactions and their surface stoichiometries were confirmed by XPS data. The crystal and electronic structures were investigated by using X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS). XRD data suggested that LiM0.05Mn1.95O4 possesses nearly no any variations in lattice parameters compared with LiMn2O4 for slight substitution of Ni, Fe and Ti; the substituted Ni, Fe and Ti ions were located on the 16d octahedral sites in the spinel crystal lattice. The XPS results suggested that Fe and Ti ions were at + 3 and + 4 oxidation states, respectively; while Ni ions are mixed with + 2 and + 3 oxidation states. The normal oxidation state of Mn ions in the above four materials is almost the same and calculated as + 3.55 according to the splitting energies of Mn3s states.  相似文献   

5.
《Solid State Ionics》2006,177(15-16):1381-1388
In this work, we have studied the multilayered polypyrrole(PPy)/oxide composite electrode on glassy carbon (GC) having the structure GC/PPy/PPy(Cu1.4Mn1.6O4)/PPy using X-ray Photoelectron Spectroscopy and Mn K-edge and Cu K-edge XANES and EXAFS. The mixed oxide particles have been incorporated into the PPy matrix simultaneously to the electropolymerization of Py from a solution containing 0.1 M Py + 0.15 M KCl + Cu1.4Mn1.6O4. The XPS data have shown that, prior to the incorporation of the oxide into the PPy matrix, it contains Cu+, Cu2+, Mn3+ and Mn4+. The XPS, XANES and EXAFS results have shown that when the oxide is incorporated into the PPy matrix, the Cu+ present in the original oxide suffers dismutation to give Cu2+ and metallic Cu. The metallic Cu is segregated out of the spinel structure. The Mn K-edge XANES and EXAFS data show that, after the incorporation into the PPy matrix, Mn is present as Mn3+ and Mn4+ occupying octahedral sites in a spinel-related structure while the Cu K-edge XANES and EXAFS data indicate that copper occupies tetrahedral sites predominantly in that structure but having a large degree of disorder in the second and higher coordination shells.  相似文献   

6.
Excitonic lifetimes in Cd1  xMnUe2Te, Cd1  xMgxTe epilayers and CdTe/Cd1  xMnxTe, Cd1  xMnxTe/Cd1  vMgyTe single quantum wells with different well widths and Mn, Mg compositions are investigated. The excitonic lifetimes are found to reduce drastically by applying external magnetic fields to samples with giant Zeeman splittings. The observed phenomenon is interpreted in terms of the PL decay time contribution from the long-life dark excitons which can convert to excitons for recombinations by a spin-flip process. We attribute the lifetime reduction to the depletion of dark excitons due to their crossing over the exciton energies for dipole allowed transitions in magnetic fields.  相似文献   

7.
《Solid State Ionics》2006,177(26-32):2269-2273
Iron-doped Pr2Ni0.8Cu0.2O4 was studied as a new mixed electronic and oxide-ionic conductor for use as an oxygen-permeating membrane. An X-ray diffraction analysis suggested that a single phase K2NiF4-type structure was obtained in the composition range from x = 0 to 0.05 in Pr2Ni0.8  xCu0.2FexO4. It is considered that the doped Fe is partially substituted at the Ni position in Pr2NiO4. The prepared Pr2NiO4-based oxide exhibited a dominant hole conduction in the PO2 range from 1 to 10 21 atm. The electrical conductivity of Pr2Ni0.8−xCu0.2FexO4 is as high as 102 S cm 1 in the temperature range of 873–1223 K and it gradually decreased with the increasing amount of Fe substituted for Ni. The oxygen permeation rate was significantly enhanced by the Fe doping and it was found that the highest oxygen permeation rate (60 μmol min 1 cm 2) from air to He was achieved for x = 0.05 in Pr2Ni0.8  xCu0.2FexO4. Since the chemical stability of the Pr2NiO4-based oxide is high, Pr2Ni0.75Cu0.2Fe0.05O4 can be used as the oxygen-separating membrane for the partial oxidation of CH4. It was observed that the oxygen permeation rate was significantly improved by changing from He to CH4 and the observed permeation rate reached a value of 225 μmol min 1 cm 2 at 1273 K for the CH4 partial oxidation.  相似文献   

8.
《Solid State Ionics》2006,177(19-25):2005-2008
Electronic conductivity in the potential SOFC anode material La1−xSrxCr0.5Mn0.5Oδ has been investigated in the range 0.2 < x < 0.3. log(σT) vs. 1/T plots indicate conduction via thermally activated polaron hopping. At 900 °C, conductivity in air increases with Sr2+ via an increase in [BB] holes (B—transition metal). X-ray absorption spectroscopy (XAS) studies indicate that compensation for A-site Sr substitution and oxygen vacancy formation is via the Mn cation only; Cr maintains a 3+ oxidation state and 6-fold oxygen coordination. Electronic transport occurs by percolation between Mn cations in a disordered B-site sub-lattice. Conductivity decreases with p(O2), which is indicative of p-type conduction behaviour, but the relationship cannot be explained by a simple redox equilibrium involving Mn3+, Mn4+ and oxygen, possibly due to co-existence of Mn2+, Mn3+ and Mn4+ via disproportionation as with La1−xSrxMnOδ.  相似文献   

9.
In this work, we have experimentally studied the structure and electrochemical properties of nanocrystalline TiFe- and LaNi5-type alloys. These materials were prepared by mechanical alloying (MA) followed by annealing. The properties of hydrogen host materials can be modified substantially by alloying to obtain the desired storage characteristics. It was found that the respective replacement of Fe in TiFe by Ni and/or by Cr, Co, Mo, Zr improved not only the discharge capacity but also the cycle life of these electrodes. In the nanocrystalline TiFe0.25Ni0.75, powder discharge capacity up to 155 mA h g−1 was measured (at 40 mA g−1 discharge current). On the other hand, a partial substitution of Ni by Al or Mn in LaNi5−xMx alloy leads to an increase in discharge capacity. The alloying elements such as Al, Mn and Co greatly improved the cycle life of LaNi5 material. For example, in the nanocrystalline LaNi3.75Mn0.75Al0.25Co0.25 powder, discharge capacity up to 258 mA h g−1 was measured (at 40 mA g−1 discharge current). The studies show, that electrochemical properties of Ni–MH batteries are the function of the microstructure and the chemical composition of used electrode materials.  相似文献   

10.
Sn1?xMnxO2 (x  0.11) thin films were fabricated by sol–gel and spin-coated method on Si (1 1 1) substrate. X-ray diffraction revealed that single-phase rutile polycrystalline structure was obtained for x up to about 0.078. Evolution of the lattice parameters and X-ray photoelectron spectroscopy studies confirmed the incorporation of Mn3+ cations into rutile SnO2 lattice. Optical transmission studies show that the band gap energy (Eg) broadens with the increasing of Mn content. Magnetic measurements revealed that all samples exhibit room temperature ferromagnetism (RTFM), which is identified as an intrinsic characteristic. Interestingly, the magnetic moment per Mn atom decreases with the increasing Mn content. The origin of RTFM can be interpreted in terms of the bound magnetic polaron model.  相似文献   

11.
《Solid State Ionics》2006,177(7-8):691-695
Single crystals of the lithium-rich lithium manganese oxide spinels Li1 + xMn2  xO4 with x = 0.10 and 0.14 have been successfully synthesized in high-temperature molten chlorides at 1023 K. The single-crystal X-ray diffraction study confirmed the cubic Fd3¯m space group and the lattice parameters of a = 8.2401(9) Å for x = 0.10 and a = 8.2273(10) Å for x = 0.14 at 300 K, respectively. The crystal structures have been refined to the conventional values R = 3.7% for x = 0.10 and R = 3.1% for x = 0.14, respectively. Low-temperature single-crystal X-ray diffraction experiments revealed that these single crystal samples showed no phase transition between 100 and 300 K. The electron-density distribution images in these compounds by the single-crystal MEM analysis clearly showed strong covalent bonding features between the Mn and O atoms due to the Mn–3d and O–2p interaction.  相似文献   

12.
A series of Mn–Zn Ferrite nanoparticles (<15 nm) with formula MnxZn1−xFe2O4 (where x=0.00, 0.35, 0.50, 0.65) were successfully prepared by citrate-gel method at low temperature (400 °C). X-ray diffraction analysis confirmed the formation of single cubic spinel phase in these nanoparticles. The FESEM and TEM micrographs revealed the nanoparticles to be nearly spherical in shape and of fairly uniform size. The fractions of Mn2+, Zn2+ and Fe3+ cations occupying tetrahedral sites along with Fe occupying octahedral sites within the unit cell of different ferrite samples are estimated by room temperature micro-Raman spectroscopy. Low temperature Mossbauer measurement on Mn0.5Zn0.5Fe2O4 has reconfirmed the mixed spinel phase of these nanoparticles. Room temperature magnetization studies (PPMS) of Mn substituted samples showed superparamagnetic behavior. Manganese substitution for Zn in the ferrite caused the magnetization to increase from 04 to18 emu/g and Lande's g factor (estimated from ferromagnetic resonance measurement) from 2.02 to 2.12 when x was increased up to 0.50. The FMR has shown that higher Mn cationic substitution leads to increase in dipolar interaction and decrease in super exchange interaction. Thermomagnetic (MT) and magnetization (MH) measurements have shown that the increase in Mn concentration (up to x=0.50) enhances the spin ordering temperature up to 150 K (blocking temperature). Magnetocrystalline anisotropy in the nanoparticles was established by Mossbauer, ferromagnetic resonance and thermomagnetic measurements. The optimized substitution of manganese for zinc improves the magnetic properties and makes these nanoparticles a potential candidate for their applications in microwave region and biomedical field.  相似文献   

13.
LiNi0.5Mn1.5O4 was synthesized as a cathode material for Li-ion batteries by a sonochemical reaction followed by annealing, and was characterized by XRD, SEM, HRTEM and Raman spectroscopy in conjunction with electrochemical measurements. Two samples were prepared by a sonochemical process, one without using glucose (sample-S1) and another with glucose (sample-S2). An initial discharge specific capacity of 130 mA h g−1 is obtained for LiNi0.5Mn1.5O4 at a relatively slow rate of C/10 in galvanostatic charge–discharge cycling. The capacity retention upon 50 cycles at this rate was around 95.4% and 98.9% for sample-S1 and sample-S2, respectively, at 30 °C.  相似文献   

14.
《Solid State Ionics》2009,180(40):1702-1709
Nanopowders of Ca1  xEuxMnO3 (0.1  x  0.4) manganites were synthesized as a single phase using the auto gel-combustion method. The citrate method shows to be simple and appropriate to obtain single phases avoiding segregation or contamination. The Ca1  xEuxMnO3 system has been synthesized at 800 °C during 18 h, against the conventional method of mixing oxides used to obtain these materials at higher temperatures of synthesis. The formation reaction was monitored by X-ray diffraction (XRD) analysis and an infrared absorption technique (FTIR). The polycrystalline powders are characterised by nanometric particle size, ∼ 48 nm as determined from X-ray line broadening analysis using the Scherrer equation. Morphological analysis of the powders, using the scanning electron microscope (SEM), revealed that all phases are homogeneous and the europium-substituted samples exhibit a significant decrease in the grain size when compared with the undoped samples. The structure refinement by using the Rietveld method indicates that the partial calcium substitution by europium (for x  0.3) modifies the orthorhombic structure of the CaMnO3 perovskite towards a monoclinic phase. All manganites show two active IR vibrational modes around 400 and 600 cm 1. The high temperature dependence of electrical resistivity (between 25 and 600 °C) allows us to conclude that all the samples exhibit a semiconductor behaviour and the europium causes a decrease in the electrical resistivity by more than one order of magnitude. The results can be well attributed to the Mn4+/Mn3+ ratio.  相似文献   

15.
The ESR spectra of the ferrite system Co0.6Zn0.4MnxFe2−xO4 (x=0, 0.1, 0.2, 0.3, 0.4 and 0.5) were obtained at room temperature. The experimental values of the magnetic moment (μexp) were estimated from the ESR spectra and the cation distribution was consequently established from the values of μexp. The systematic decrease in ESR line width observed in our present study was attributed to the decrease of Fe2+ concentration with increasing Mn content. The resonance field decreases and reaches a minimum at high values of Mn content whereas the magnetic moment reaches a maximum at these values. The IR spectra were recorded in the range 200–1200 cm−1. The bands at 569 (ν1) and 389 cm−1 were assigned to the tetrahedral and octahedral complexes, respectively. The band at 441 cm−1 is due to the Mn–O bond vibration. The theoretical lattice parameter was calculated and was found to be larger than the experimental one aexp due to the presence of Mn4+ ions.  相似文献   

16.
《Solid State Ionics》2006,177(19-25):1807-1810
The crystal chemistry and mixed conductor properties of the n = 2 member of the Ruddlesden–Popper (R–P) phases Sr3−xLaxFe2−yNiyO7−δ with 0  x  0.3 and 0  y  1.0 have been studied at high temperature. High-temperature X-ray diffraction and thermogravimetric measurements of the equilibrium pO2 (10 5  pO2  1 atm) in the temperature range 400  T  1000 °C indicate that the Sr3FeNiO7−δ phase is able to accommodate a large oxygen non-stoichiometry (δ  1.5) without structural transformations. The electrical conductivity and oxygen permeability increase with the substitution of Ni for Fe in the range 550  T  1000 °C. The electrical transport of the Sr3FeNiO7−δ phase is thermally activated and the activation energy decreases with the substitution of Ni for Fe for a given oxygen content. The increase in the oxygen permeation flux with increasing Ni content is due to an increasing oxygen non-stoichiometry and a lower activation energy for permeation.  相似文献   

17.
《Current Applied Physics》2010,10(2):574-579
BaBi4Ti4−xZrxO15 with x = 0.1, 0.2, 0.3 and 0.5, has been synthesized via modified solid state reaction route. X-ray diffraction studies confirmed the formation of single phase Zr4+ substituted BaBi4Ti4O15 up to x = 0.2. ZrO2 and Bi2O3 based impurity phases were found at x = 0.3 and 0.5 substitutions. However, Rietveld refinement showed the increase in lattice parameters of BaBi4Ti4O15 up to x = 0.5 substitutions. A broad dielectric peak associated with frequency dependence dielectric maximum temperature was observed at low substitutions. Relaxor behavior was suppressed at x = 0.5 substitution. A broadening and shifting of permittivity-temperature peak was found for the substitution. The high temperature slopes of dielectric peaks were analyzed by quadratic law for relaxors. The degree of relaxation and phase transformation diffusiveness were investigated at different substitutions.  相似文献   

18.
Nanoparticles of Mn of sizes  < 500 Å were prepared by the ball-milling technique. The temperature dependence of the magnetic susceptibility χ showed systematic variation with particle size. Peaks observed in χ were attributed to the magnetic ordering of the oxides Mn3O4and MnO. Peaks found in (χT) / ∂T were associated with the Neel temperature ofα -Mn. We estimated that our samples contain about 0.4% of Mn3O4. This low concentration of Mn3O4was not detected by X-ray diffraction experiments but contributed significantly to the magnetization measurements.  相似文献   

19.
《Current Applied Physics》2010,10(1):333-336
Observation of room temperature ferromagnetism in Fe doped In2O3 samples (In1−xFex)2O3 (0  x  0.07) prepared by co-precipitation technique is reported. Lattice parameter obtained from powder X software shows distinct shrinkage of the lattice constant indicating an actual incorporation of Fe ions into the In2O3 lattice. X-ray diffraction data measurements show that the entire sample exhibits single phase polycrystalline behavior. SEM micrographs showed the prepared powder was in the range 25–36 nm. SEM EDS mapping showed the presence of Fe and In ions in the Fe doped In2O3 sample. The highest remanence magnetization moment (6.624 × 10−4 emu/g) is reached in the sample with x = 0.03.  相似文献   

20.
《Solid State Ionics》2006,177(3-4):269-274
Alkaline earth substituted UO2 (U1  xMxO2 ± δ; M = Mg, Ca, Sr; 0.1  x  0.525) with fluorite structure was synthesized in reducing atmosphere. Structure and conductivity properties of U1  xMxO2 ± δ fluorites were investigated for possible application in solid oxide fuel cells (SOFC). At room temperature and ambient atmosphere the materials are stable; however they decompose at an oxygen partial pressure pO2 > 10 4 atm and temperatures higher than 600 °C. The total conductivity measured for the best conducting U1  xMxO2 ± δ material with M = Ca and x = 0.177 is as high as 3 S/cm at pO2 < 10 4 atm at 600 °C. The relatively low ionic transference number (ti∼0.02) is disadvantageous for potential use as electrolyte material for SOFC applications. The high conductivity and possible depolarization effects suggest potential use as anode materials in SOFC.  相似文献   

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