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1.
《Solid State Ionics》2006,177(26-32):2245-2248
Development of new mixed conductors with both high oxygen permeability and phase stability under reducing atmosphere is indispensable for realizing practical MIEC systems of oxygen separation and membrane reactor. In this study, a family of Co-free Fe-based perovskite-type oxides, (Ba,Sr)(Fe,Mn)O3−δ was prepared and their oxygen permeability and phase stability against reduction were examined. Optimum Ba doping concentration at A site was found around 30%, and Ba0.3Sr0.7FeO3−δ showed highest oxygen permeability (3.0 cm3(STP)cm 2 min 1 at 900 °C) in this study. Perovskite-type oxides of the Ba–Mn–Fe–O and Ba–Sr–Mn–Fe–O systems with appropriate compositions preserved the structure even after annealing in the reducing atmosphere of 5% H2/N2 at 1000 °C, showing their exceeding reduction tolerance.  相似文献   

2.
《Solid State Ionics》2006,177(19-25):1747-1752
Oxygen tracer diffusion coefficient (D) and surface exchange coefficient (k) have been measured for (La0.75Sr0.25)0.95Cr0.5Mn0.5O3−δ using isotopic exchange and depth profiling by secondary ion mass spectrometry technique as a function of temperature (700–1000 °C) in dry oxygen and in a water vapour-forming gas mixture. The typical values of D under oxidising and reducing conditions at ∼ 1000 °C are 4 × 10 10 cm2 s 1 and 3 × 10 8 cm2 s 1 respectively, whereas the values of k under oxidising and reducing conditions at ∼ 1000 °C are 5 × 10 8 cm s 1 and 4 × 10 8 cm s 1 respectively. The apparent activation energies for D in oxidising and reducing conditions are 0.8 eV and 1.9 eV respectively.  相似文献   

3.
Thin films of tungsten phosphate glasses were deposited on a Pd substrate by a pulsed laser deposition method and the flux of hydrogen passed thorough the glass film was measured with a conventional gas permeation technique in the temperature range 300–500 °C. The glass film deposited at low oxygen pressure was inappropriate for hydrogen permeation because of reduction of W ions due to oxygen deficiency. The membrane used in the hydrogen permeation experiment was a 3-layered membrane and consisted of Pd film (~ 20 nm), the glass film (≤ 300 nm) and the Pd substrate (250 µm). When the pressure difference of hydrogen and thickness of the glass layer were respectively 0.2 MPa and ~ 100 nm, the permeation rate through the membrane was 2.0 × 10? 6 mol cm? 2 s? 1 at 500 °C. It was confirmed that the protonic and electronic mixed conducting glass thin film show high hydrogen permeation rate.  相似文献   

4.
《Solid State Ionics》2006,177(26-32):2255-2259
Phase inversion spinning technique was employed to prepare dense perovskite hollow fiber membranes made from composition BaCoxFeyZrzO3−δ (BCFZ, x + y + z = 1.0). Scanning electron microscope (SEM) shows that such hollow fibers have an asymmetric structure, which is favored to the oxygen permeation. An oxygen permeation flux of 7.6 cm3/min cm2 at 900 °C under an oxygen gradient of 0.209 × 105 Pa/0.065 × 105 Pa was achieved. From the Wagner Theory, the oxygen permeation through the hollow fiber membrane is controlled by both bulk diffusion and surface exchange. The elements composition of fresh fiber and the fiber after long-term experiments were analyzed by energy-dispersive X-ray spectra (EDXS). Compared to the fresh fiber, sulphur was found on the tested hollow fiber membrane surface exposed to the air side and in the bulk, and Ba segregations occur on the tested hollow fiber membrane surface exposed to the air side. A decrease of the oxygen permeation flux was observed, which was probably due to the sulphur poisoning.  相似文献   

5.
The ionic conduction properties of La2NiO4+δ were studied from oxygen permeation flux and defect-related transport properties. The effects of the applied oxygen chemical potential gradient and temperature on the oxygen permeability of La2NiO4+δ at various thickness are reported. The thermally activated oxygen permeation flux increased monotonically with increasing oxygen chemical potential gradient, yielding a maximum of 0.15 cc min?1 cm?2 under air/N2 conditions for the 0.95 mm-thick La2NiO4+δ specimen at 900 °C. The oxygen ion conductivity of La2NiO4+δ was calculated as a function of temperature and oxygen partial pressure by differentiating the chemical diffusion equation for the oxygen permeation flux based on the dominant electronic transference number. In addition, the oxygen ion conductivity was extracted successfully by solving the Nernst–Einstein equation combining with the calculated self-diffusion coefficient of oxygen from the chemical diffusivity and thermodynamic enhancement factor from the equilibrium oxygen nonstoichoimetry of a La2NiO4+δ specimen, and a deviation of the OPP dependence of 1/6 power was observed.  相似文献   

6.
《Solid State Ionics》2006,177(37-38):3285-3296
Oxygen nonstoichiometry, structure and transport properties of the two compositions (La0.6Sr0.4)0.99CoO3−δ (LSC40) and La0.85Sr0.15CoO3−δ (LSC15) were measured. It was found that the oxygen nonstoichiometry as a function of the temperature and oxygen partial pressure could be described using the itinerant electron model. The electrical conductivity, σ, of the materials is high (σ > 500 S cm 1) in the measured temperature range (650–1000 °C) and oxygen partial pressure range (0.209–10 4 atm). At 900 °C the electrical conductivity is 1365 and 1491 S cm 1 in air for LSC40 and LSC15, respectively. A linear correlation between the electrical conductivity and the oxygen vacancy concentration was found for both samples. The mobility of the electron-holes was inversely proportional with the absolute temperature indicating a metallic type conductivity for LSC40. Using electrical conductivity relaxation the chemical diffusion coefficient of oxygen was determined. It was found that accurate values of the chemical diffusion coefficient could only be obtained using a sample with a porous surface coating. The porous surface coating increased the surface exchange reaction thereby unmasking the chemical diffusion coefficient. The ionic conductivity deduced from electrical conductivity relaxation was determined to be 0.45 S cm 1 and 0.01 S cm 1 at 1000 and 650 °C, respectively. The activation energy for the ionic conductivity at a constant vacancy concentration (δ = 0.125) was found to be 0.90 eV.  相似文献   

7.
Multiferroic BiFeO3 and Bi0.92Dy0.08FeO3 ceramics were prepared to study their crystal structures and piezoelectric properties. BiFeO3 exhibits rhombohedral phase below 810 °C. Although Bi0.92Dy0.08FeO3 ceramic also shows rhombohedral phase at room temperature, it allows the coexistence of rhombohedral phase and orthorhombic phase at 460–650 °C. Both samples have maximum polarizations of >21 μC/cm2 and piezoelectric d33 values of ~37 pC/N at room temperature. Their polarized slices show the dielectric anomalies and impedance anomalies because of vibrating resonances below 500 °C, and the thickness vibration electromechanical coupling factor is ~0.6 and ~0.4 for BiFeO3 and Bi0.92Dy0.08FeO3, respectively. The vibrating resonances confirm piezoelectric responses. Furthermore, samples' impedance and resistance decrease fast with temperature increasing, which screens piezoelectric response above 550 °C.  相似文献   

8.
Mixed electron hole and oxide ion conducting perovskite-type oxides, La0.8Sr0.2(Ga0.8Mg0.2)1 ? xCrxO3 ? δ (0  x  1.0), were prepared by solid state reaction. The phase stability and the oxygen permeation properties of the oxides were examined as a function of the content of Cr. La0.8Sr0.2(Ga0.8Mg0.2)1 ? xCrxO3 ? δ has a perovskite related tetragonal phase with x = 0.1 to 0.8. The total electrical conductivity of La0.8Sr0.2(Ga0.8Mg0.2)1 ? xCrxO3 ? δ increases with increasing x. The oxygen permeation flux across the La0.8Sr0.2(Ga0.8Mg0.2)1 ? xCrxO3 ? δ membranes at higher temperatures increases with x up to x = 04. The maximum oxygen permeation flux of 1.6 × 10? 7 mol? 1 cm? 2 at 1100 °C in a oxygen activity gradient of air/10? 2 Pa is observed in La0.8Sr0.2(Ga0.8Mg0.2)0.6Cr0.4O3 ? δ. This perovskite-type oxide is stable under an oxygen partial pressure of 7 × 10? 10 Pa at 1000 °C.  相似文献   

9.
Ionoluminescence (IL) and photoluminescence (PL) spectra for different rare earth ions (Sm3+ and Dy3+) activated YAlO3 single crystals have been induced with 100 MeV Si7+ ions with fluence of 7.81×1012 ions cm?2. Prominent IL and PL emission peaks in the range 550–725 nm in Sm3+ and 482–574 nm in Dy3+ were recorded. Variation of IL intensity in Dy3+ doped YAlO3 single crystals was studied in the fluence range 7.81×1012–11.71×1012 ions cm?2. IL intensity is found to be high in lower ion fluences and it decreases with increase in ion fluence due to thermal quenching as a result of an increase in the sample temperature caused by ion beam irradiation. Thermoluminescence (TL) spectra were recorded for fluence of 5.2×1012 ions cm?2 on pure and doped crystals at a warming rate of 5 °C s?1 at room temperature. Pure crystals show two glow peaks at 232 (Tg1) and 328 °C (Tg2). However, in Sm3+ doped crystals three glow peaks at 278 (Tg1), 332 (Tg2) and 384 °C (Tg3) and two glow peaks at 278 (Tg1) and 331 °C (Tg2) in Dy3+ was recorded. The kinetic parameters (E, b s) were estimated using glow peak shape method. The decay of IL intensity was explained by excitation spike model.  相似文献   

10.
We examined the electric field-assisted thermionic emission of atomic oxygen radical anion (O?) in a vacuum from fluorine-substituted derivatives of 12CaO·7Al2O3 (C12A7) with a composition of (12 ? x)CaO·7Al2O3·xCaF2 (0  x  0.8). Unsubstituted C12A7 easily decomposed into 5CaO?3Al2O3 (C5A3) and 3CaO?Al2O3 (C3A) above 830 °C during the emission experiment in a vacuum. The decomposition temperature range became narrower as the amount of F? ion substitution increased, e.g. the sample with x = 0.4 kept a single phase after the emission experiment at 900 °C. The emitted anionic species from the x = 0.4 sample were dominated by O? ions (~ 92%) together with a small amount of O2? ions (~ 4%) and F? ions (~ 4%). The absence of an O2 gas supply to the opposite side of the emission surface led to a nearly steady co-emission of O? ions and electrons with a ratio of < 1/1. The O2 gas supply markedly enhanced the O? ion emission, and suppressed the electron emission. A sustainable and high-purity O? ion emission with a current density of 11 nA cm? 2 was achieved at 830 °C with the supply of 40 Pa O2 gas. The similarity in these emission features to the unsubstituted C12A7, together with the improved thermal stability demonstrates that the F? ion-substituted C12A7 is a promising material for higher intensity O? ion emission at higher temperatures.  相似文献   

11.
《Solid State Ionics》2006,177(26-32):2261-2267
Yttria-stabilized zirconia (YSZ) can be used as an oxygen-permeating membrane at elevated temperature (> 1400 °C) due to its chemical and mechanical stability. It was previously shown that the oxygen transport through YSZ membrane in reducing oxygen partial pressure (PO2) was highly influenced by the surface-exchange kinetics that can be improved by porous surface coating layers such as YSZ, GDC (Gd-doped ceria) or YSZ–GDC mixture [H.J. Park, G.M. Choi, J. Eur. Ceram. Soc. 25 (2005) 2577]. However, the increased oxygen flux was still lower than that estimated assuming bulk-diffusion limit and rapidly decreased with time due to the sintering of coating layers and the reaction between bulk YSZ and coating layers. In this study, the oxygen fluxes through YSZ with LaCrO3, GDC + LaCrO3 (bilayer), LaCrO3 + 5 wt.% GDC (mixture), or LaCr0.7Co0.3O3 coatings were measured under controlled PO2 gradient (permeate-side PO2: ∼ 3 × 10 12 atm, feed-side PO2: 2 × 10 10–2 × 10 8 atm) at 1600 °C. The oxygen flux drastically increased with these coatings. The highest increase in oxygen flux was shown with GDC + LaCrO3 (bilayer) coating and was maintained for a long time. The presence of highly catalytic Ce ions while maintaining porous structure in the coating layer may explain the observation. The prevention of formation of resistive layer due to ceria coating may also be partly responsible for the observation.  相似文献   

12.
《Solid State Ionics》2006,177(26-32):2313-2316
The operation of langasite (La3Ga5SiO14) resonators as sensors at elevated temperature and controlled atmospheres is examined. This paper focuses on mapping the regimes of gas-insensitive operation of uncoated langasite resonators and the correlation to langasite's defect chemistry for temperatures up to 1000 °C. As a measure of sensitivity, the fundamental resonant mode at 5 MHz is estimated to be determined to within ± 4 Hz by network analysis for resonators operated in air at temperatures below 1000 °C. The calculated frequency shift induced by redox-related reactions in langasite only exceeds the limit of ± 4 Hz below pO2  10 17 bar at 1000 °C, below 10 24 bar at 800 °C and below 10 36 bar at 600 °C. Water vapor is found to shift the resonance frequency at higher oxygen partial pressures. In the hydrogen-containing atmospheres applied here, langasite can be regarded as a stable resonator material above oxygen partial pressures of about 10 13 and 10 20 bar at 800 and 600 °C, respectively.  相似文献   

13.
This study demonstrates that humidity, temperature, and the interlayer anions influence ionic conductivities of Mg–Al layered double hydroxides (LDHs) intercalated with inorganic anions. Results show that Mg–Al LDH intercalated with Br? exhibited the highest ionic conductivity among Mg–Al LDHs intercalated with CO32?, Cl?, Br?, NO3? and SO42?. Its ionic conductivity was 1.1 × 10? 2 S cm? 1 at 80 °C under 80% relative humidity. The electromotive force for the hydroxide ion concentration cell using Mg?Al CO32? LDH showed the same behavior with that using an anion exchange membrane, indicating that Mg–Al CO32? LDH can be a hydroxide ion conductor.  相似文献   

14.
《Current Applied Physics》2010,10(4):1071-1075
The physical and electrochemical properties of the activated carbon pellet electrodes have been investigated. Activated carbon pellets were prepared from single step carbonization process of pre-carbonized rubber wood sawdust at a temperature of 800 °C that followed with a CO2 activation process at temperature in the range of 700–1000 °C. The BET characterization on the sample found that the surface area of the carbon pellet increased with the increasing of the activation temperature. The optimum value was as high as 683.63 m2 g−1. The electrical conductivity was also found to increase linearly with the increasing of the activation temperature, namely from 0.0075 S cm−1 to 0.0687 S cm−1 for the activation temperature in the range of 700–1000 °C. The cyclic voltammetry characterization of the samples in aqueous solution of 1 M H2SO4 also found that the specific capacitance increased with the increasing of the activation temperature. Typical optimum value was shown by the sample activated at 900 °C with the specific capacitance was as high as 33.74 F g−1 (scan rate 1 mV s−1). The retained ratio was as high as 32.72%. The activated carbon pellet prepared from the rubber wood sawdust may found used in supercapacitor applications.  相似文献   

15.
New solid electrolytes containing acetamide and lithium bioxalato borate (LiBOB) with different molar ratios have been investigated. Their melting points (Tm) are around 42 °C. The ionic conductivities and activation energies vary drastically below and above Tm, indicating a typical feature of phase transition electrolyte. The ionic conductivity of the LiBOB/acetamide electrolyte with a molar ratio of 1:8 is 5 × 10? 8 S cm? 1 at 25 °C but increases to 4 × 10? 3 S cm? 1 at 60 °C. It was found that anode materials, such as graphite and Li4Ti5O12, could not discharge and charge properly in this electrolyte at 60 °C due to the difficulty in forming a stable passivating layer on the anodes. However, a Li/LiFePO4 cell with this electrolyte can be charged properly after heating to 60 °C, but cannot be charged at room temperature. Although the LiBOB/acetamide electrolytes are not suitable for Li-ion batteries due to poor electrode compatibility, the current results indicate that a solid electrolyte with a slightly higher phase transition temperature than room temperature may find potential application in stationary battery for energy storage where the electrolyte is at high conductive liquid state at elevated temperature and low conductive solid state at low temperature. The interaction between acetamide and LiBOB in the electrolyte is also studied by Raman and FTIR spectroscopy.  相似文献   

16.
PrGa0.95Mg0.05O3 was synthesized by a standard solid-state technique, having an orthorhombic structure determined from X-ray diffraction (XRD) data at room temperature. At high temperature, an inflection is found on the Ln σT vs. 1/T curve at about 550 °C. The inflection can also be observed on thermal expansion vs. temperature curve at about 530 °C. Furthermore, the number of Raman modes between 200 and 400 cm?1 decreases and the peak at about 190 cm?1 weakens at about 450 °C. The results indicate a structural transition from orthorhombic to tetrahedral or rhombohedral.  相似文献   

17.
Doped lanthanum manganese chromite based perovskite, La0.7A0.3Cr0.5Mn0.5O3 ? δ (LACM, A = Ca, Sr, Ba), on yttria-stabilized zirconia (YSZ) electrolyte is investigated as potential electrode materials for solid oxide fuel cells (SOFCs). The electrical conductivity and electrochemical activity of LACM depend on the A-site dopant. The best electrochemical activity is obtained on the La0.7Ca0.3Cr0.5Mn0.5O3 ? δ/YSZ (LCCM/YSZ) composite electrodes. The conductivity of LCCM is 29.9 S cm? 1 at 800 °C in air, and the electrode polarization resistance (RE) of the LCCM/YSZ composite cathode for the O2 reduction reaction is 0.5 Ω cm2 at 900 °C. The effect of Gd-doped ceria (GDC) impregnation on the LCCM cathode polarization resistances is also studied. GDC impregnation significantly enhances the electrochemical activity of the LCCM cathode. In the case of the 6.02 mg cm? 2 GDC-impregnated LCCM cathode, RE is 0.4 Ω cm2 at 800 °C, ~ 60 times smaller than 24.4 Ω cm2 measured on a LCCM cathode without the GDC impregnation. Finally the electrochemical activities of the doped lanthanum manganese chromites for the H2 oxidation reaction are also investigated.  相似文献   

18.
In this study, the synthesis of Ce0.8Sm0.2O1.9 (SDC) solid electrolyte by the ultrasound assisted co-precipitation method was accomplished to explore the effects of ultrasound power, ultrasound pulse ratio and probe type upon the ionic conductivity of SDC as well as the lattice parameter, the microstructure and the density. Fine powders of uniform crystallite sizes (average 11.70 ± 0.62 nm) were obtained, needing lower sintering temperature. The SDC powders were successfully sintered to a relative density of over 95% at 1200 °C (5 °C min?1) for 6 h. The micrograph of SDC pellets showed non-agglomerated and well-developed grains with average size of about 200 nm. X-ray diffraction analysis showed that the lattice parameter increased with increasing acoustic intensity and reached a maximum for the 14.94 W cm?2. Further, a linear relationship was detected between the lattice parameter and the ionic conductivity, inspiring a dopant like effect of US on the electrolyte properties. The highest ionic conductivity as σ800°C = 3.07 × 10?2 S cm?1 with an activation energy Ea = 0.871 kJ mol?1 was obtained with pulsed ultrasound for an acoustic intensity of 14.94 W cm?2, using 19 mm probe and 8:2 pulse ratio.  相似文献   

19.
《Solid State Ionics》2006,177(19-25):1795-1798
Oxygen deficiency, thermal and chemical expansion of La0.5Sr0.5Fe1−xCoxO3−δ (x = 0, 0.5, 1) have been measured by thermogravimetry, dilatometry and high temperature X-ray diffraction. The rhombohedral perovskite materials transformed to a cubic structure at 350 ± 50 °C. The thermal expansion of the materials up to the onset of thermal reduction was 14–18 × 10 6 K 1. Above 500 °C in air (400 °C in N2), chemical expansion contributed to the thermal expansion and the linear thermal expansion coefficients were significantly higher, 16–35 × 10 6 K 1. The chemical expansion, εc, showed a maximum of 0.0045 for x = 0.5 and 0.0041 for x = 1 at 800–900 °C. The normalized chemical expansion, εcδ, was 0.036 for x = 0.5 and 0.035 for x = 1 at 800 °C. The chemical expansion can be correlated with an increasing ionic radius of the transition metals with decreasing valence state.  相似文献   

20.
《Solid State Ionics》2006,177(33-34):2931-2938
Surface exchange resistance can reduce the oxygen transport through dense mixed ionic-electronic conducting (MIEC) membranes. Addition of an MIEC surface layer to a base substrate can reduce the surface exchange resistance. Existing oxygen transport relations that consider bulk diffusion and surface exchange resistance are extended to treat coated membranes formed by depositing a highly conductive, thin layer of MIEC on the surface of a dissimilar MIEC substrate and accounting for the solid/solid interfacial resistance. The oxygen flux through the coated membrane may exceed that through the bare membrane only if: 1) the surface exchange coefficient of the added layer is larger than the surface exchange coefficient of the bare membrane; and 2) the solid/solid interfacial resistance is sufficiently small. In general, deposition of the surface layer on the membrane tube surface exposed to lean gas leads to a larger oxygen flux than deposition of the layer on the oxygen rich side. A La0.5Sr0.5Fe0.8Ga0.2O3-δ/SrCo0.8Fe0.2O3-δ membrane achieved an oxygen outwards flux of 0.45 mL/mincm2 at 1000 °C from an air/helium gradient. This was a ∼ 50% increase over that obtained using an uncoated LSFG tube.  相似文献   

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