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1.
The formation of a solid solution containing the three elements V, Sb and Mo, which are key-elements in the design of light alkane oxidation catalysts, has been studied by incorporating molybdenum into the pure VSbO4 compound as obtained in air at 700°C (V3+0.28V4+0.640.16Sb5+0.92O4). Monophasic compounds with a rutile-type structure have been obtained and characterized by X-ray diffraction, electron microscopy, Infrared Fourier transform, X-ray absorption and electron spin resonance spectroscopies. At low molybdenum content, Mo6+ substitute V4+ in the cationic-deficient structure. The charge balance is maintained by an increase of the cationic vacancy number. This leads to the formation of a solid solution corresponding to the formula V3+0.28V4+0.64−3xMo6+2x0.16+xSb5+0.92O4 with 0<x<0.09. At higher molybdenum content, Mo5+ are stabilized and substitute Sb5+ in the rutile structure: V3+0.28V4+0.37Mo6+0.180.25Mo5+ySb5+0.9−yO4 with 0<y<0.06. At higher molybdenum content the rutile phase is no longer stable and two new phases are formed: Sb2O4 and a new mixed vanadium molybdenum antimonate.  相似文献   

2.
The new ramsdellite series LiTi2−yVyO4 (0≤y≤1) has been prepared by conventional solid state chemistry techniques and was characterized by X-ray powder diffraction and electron diffraction. To our knowledge, this is the first report on ramsdellites containing vanadium. The magnetic behaviour of these ramsdellites is strongly influenced by its vanadium content. In this sense, LiTi2O4 (y=0) exhibits metallic-like temperature independent paramagnetism, but d electrons tend to localize with increasing V content. LiTiVO4, though also paramagnetic, follows then the Curie-Weiss law. The crossover from delocalized to localized electrons is observed between compositions y=0.6 and 0.8. For y≥0.8 the magnetic results evidence an isovalent substitution mechanism of trivalent Ti by V. The electrochemical lithium intercalation and deintercalation chemistry of LiTi2−yVyO4 is grouped into two different operating voltage regions. Reversible lithium deintercalation of vanadium-substituted ramsdellite titanates LiTi2−yVyO4 in the high voltage range 2-3 V vs. Li occurs in two main steps, one at about 2 V and the other at about 3 V. The 3 V process capacity increases with the vanadium content, while the 2 V capacity decreases at the same time. The vanadium to titanium substitution rate in LiTi2O4 was found to be beneficial to the specific energy in as much as a 50% increase (1 V) of the working voltage is observed. On the other hand, reversible lithium intercalation in vanadium-substituted ramsdellite titanates LiTi2−yVyO4 in the low voltage range 1-2 V vs. Li occurs in one main single step, in which the capacity is not affected by the vanadium content, although vanadium-doping produces an improved capacity retention with an excellent cycling behaviour observed for y≤0.6.  相似文献   

3.
X-band and high-frequency EPR spectroscopy were used for studying the manganese environment in layered Li[MgxNi0.5−xMn0.5]O2, 0?x?0.5. Both layered LiMg0.5Mn0.5O2 and monoclinic Li[Li1/3Mn2/3]O2 oxides (containing Mn4+ ions only) were used as EPR standards. The EPR study was extended to the Ni-substituted analogues, where both Ni2+ and Mn4+ are paramagnetic. For LiMg0.5−xNixMn0.5O2 and Li[Li(1−2x)/3NixMn(2−x)/3]O2, an EPR response from Mn4+ ions only was detected, while the Ni2+ ions remained EPR silent in the frequency range of 9.23-285 GHz. For the diamagnetically diluted oxides, LiMg0.25Ni0.25Mn0.5O2 and Li[Li0.10Ni0.35Mn0.55]O2, two types of Mn4+ ions located in a mixed (Mn-Ni-Li)-environment and in a Ni-Mn environment, respectively, were registered by high-field experiments. In the X-band, comparative analysis of the EPR line width of Mn4+ ions permits to extract the composition of the first coordination sphere of Mn in layered LiMg0.5−xNixMn0.5O2 (0?x?0.5) and Li[Li(1−2x)/3NixMn(2−x)/3]O2 (x>0.2). It was shown that a fraction of Mn4+ are in an environment resembling the ordered “α,β”-type arrangement in Li1−δ1Niδ1[Li(1−2x)/3+δ1Ni2x/3−δ1)α(Mn(2−x)/3Nix/3)β]O2 (where and δ1=0.06 were calculated), while the rest of Mn4+ are in the Ni,Mn-environment corresponding to the Li1−δ2Niδ2[Ni1−yMny]O2 () composition with a statistical Ni,Mn distribution. For Li[Li(1−2x)/3NixMn(2−x)/3]O2 with x?0.2, IR spectroscopy indicated that the ordered α,β-type arrangement is retained upon Ni introduction into monoclinic Li[Li1/3Mn2/3]O2.  相似文献   

4.
A series of lithium–manganese–nickel-oxide compositions that can be represented in three-component notation, xLi[Mn1.5Ni0.5]O4 · (1  x){Li2MnO3 · Li(Mn0.5Ni0.5)O2}, in which a spinel component, Li[Mn1.5Ni0.5]O4, and two layered components, Li2MnO3 and Li(Mn0.5Ni0.5)O2, are structurally integrated in a highly complex manner, have been evaluated as electrodes in lithium cells for x = 1, 0.75, 0.50, 0.25 and 0. In this series of compounds, which is defined by the Li[Mn1.5Ni0.5]O4–{Li2MnO3 · Li(Mn0.5Ni0.5)O2} tie-line in the Li[Mn1.5Ni0.5]O4–Li2MnO3–Li(Mn0.5Ni0.5)O2 phase diagram, the Mn:Ni ratio in the spinel and the combined layered Li2MnO3 · Li(Mn0.5Ni0.5)O2 components is always 3:1. Powder X-ray diffraction patterns of the end members and the electrochemical profiles of cells with these electrodes are consistent with those expected for the spinel Li[Mn1.5Ni0.5]O4 (x = 1) and for ‘composite’ Li2MnO3 · Li(Mn0.5Ni0.5)O2 layered electrode structures (x = 0). Electrodes with intermediate values of x exhibit both spinel and layered character and yield extremely high capacities, reaching more than 250 mA h/g with good cycling stability between 2.0 V and 4.95 V vs. Li° at a current rate of 0.1 mA/cm2.  相似文献   

5.
Complex vanadium and titanium oxides modified by copper ions are studied by the electrochemical and ESR methods. Oxides Cu x V2?y Ti y O5?δ·nH2O (0<y<1.33) have a layered structure and oxides Cu x Ti1?y V y O5+δ·nH2O (0<y<0.25), an anatase structure. The intercalation of cations Cu2+ into the hydrates leads to oxidation of V4+. According to ESR data, V4+ exists in the oxides in the form of VO2+ and an octahedral surround of oxygen (V4+?O6), respectively. The electroreduction of ions of d-elements and chemisorbed oxygen in the oxides is analyzed. The intercalation of cations Cu2+ alters the content of V4+ and the chemisorption ability of the oxides. Possible reasons for this phenomenon are discussed.  相似文献   

6.
Lithium-nickel-manganese oxides (Li1+x(Ni1/2Mn1/2)1−xO2, x=0 and 0.2), having different cationic distributions and an oxidation state of Ni varying from 2+ to 3+, were formed under a high-pressure (3 GPa). The structure and cationic distribution in these oxides were examined by powder X-ray diffraction, infrared (IR) and electron paramagnetic resonance (EPR) in X-band (9.23 GHz) and at higher frequencies (95 and 285 GHz). Under a high pressure, a solid-state reaction between NiMnO3 and Li2O yields LiNi0.5Mn0.5O2 with a disordered rock-salt type structure. The paramagnetic ions stabilized in this oxide are mainly Ni2+ and Mn4+ together with Mn3+ (about 10%). The replacement of Li2O by Li2O2 permits increasing the oxidation state of Ni ions in lithium-nickel-manganese oxides. The higher oxidation state of Ni ions favours the stabilization of the layered modification, where the Ni-to-Mn ratio is preserved: Li(Li0.2Ni0.4Mn0.4)O2. The paramagnetic ions stabilized in the layered oxide are mainly Ni3+ and Mn4+ ions. The disordered and ordered phases display different intercalation properties in respect of lithium. The changes in local Ni,Mn-environment during the electrochemical reaction are discussed on the basis of EPR and IR spectroscopy.  相似文献   

7.
《Solid State Sciences》2000,2(1):99-107
Manganese orthovanadate Mn3(VO4)2 single crystals were grown for the first time from a flux of MnO/V2O5/MoO3. The flux and oxygen partial pressure used are the key factors for the crystal growth and prevention of the oxidation of Mn2+ and the reduction of V5+ during the crystallization process. The reduction and oxidation chemistry of Mn3(VO4)2 was studied. Mn3(VO4)2 is isostructural with magnesium orthovanadate Mg3(VO4)2, orthorhombic, space group Cmca, a=6.247(1) Å, b=11.728(2) Å, c=8.491(2) Å and Z=4, as determined by single crystal X-ray diffraction. Because it is a Mn2+ deficient spinel structure there are two-dimensional sheets of Mn2+O6 octahedra within the structure which show unusual ferrimagnetic properties.  相似文献   

8.
Layered LiNi0.4Co0.2Mn0.4O2, Li[Li0.182Ni0.182Co0.091Mn0.545]O2, Li[Li1/3Mn2/3]O2 powder materials were prepared by rheological phase method. XRD characterization shows that these samples all have analogous structure to LiCoO2. Li[Li0.182Ni0.182Co0.091Mn0.545]O2 can be considered to be the solid solution of LiNi0.4Co0.2Mn0.4O2 and Li[Li1/3Mn2/3]O2. Detailed information from XRD, ex situ XPS measurement and electrochemical analysis of these three materials reveals the origin of the irreversible plateau (4.5 V) of Li[Li0.182Ni0.182Co0.091Mn0.545]O2 electrode. The irreversible oxidation reaction occurred in the first charging above 4.5 V is ascribed to the contribution of Li[Li1/3Mn2/3]O2 component, which maybe extract Li+ from the transition layer in Li[Li1/3Mn2/3]O2 or Li[Li0.182Ni0.182Co0.091Mn0.545]O2 through oxygen release. This step also activates Mn4+ of Li[Li1/3Mn2/3]O2 or Li[Li0.182Ni0.182Co0.091Mn0.545]O2, it can be reversibly reduced/oxidized between Mn4+ and Mn3+ in the subsequent cycles.  相似文献   

9.
Srilankite-type zirconium titanate, a promising structure for ceramic pigments, was synthesized at 1400 °C following three main doping strategies: (a) ZrTi1−xAxO4, (b) ZrTi1−xyAxByO4 and (c) Zr1−xCxTiO4 where A=Co, Cr, Fe, Mn, Ni or V (chromophores), B=Sb or W (counterions) and C=Pr (chromophore); x=y=0.05. Powders were characterized by XRD with Rietveld refinements and DRS in the UV-visible-NIR range; technological properties were appraised in several ceramic matrices (frits, glazes and body). Zirconium titanate can be usefully coloured with first row transition elements, giving green and greenish yellow (Co and Ni); orange-buff (Cr and V); tan-brown hues (Mn and Fe). In industrial-like synthesis conditions, a disordered structure as (Zr,Ti)O2, with both Zr and Ti randomly distributed in the octahedral site, is achieved. Doping with chromophores and counterions induces unit cell dimensions variation and causes an oversaturation in zirconium oxide. Optical spectroscopy reveals the occurrence of Co2+, Cr3+, Fe3+, Mn2+, Mn3+, Ni2+, V3+ and V4+. The zirconium titanate pigments fulfil current technological requirements for low-temperature applications, but exhibit a limited chemico-physical stability for higher firing temperature and in chemically aggressive media.  相似文献   

10.
The electrochemical reactions of lithium with layered composite electrodes (x)LiMn0.5Ni0.5O2·(1−x)Li2TiO3 were investigated at low voltages. The metal oxide 0.95LiMn0.5Ni0.5O2·0.05Li2TiO3 (x=0.95) which can also be represented in layered notation as Li(Mn0.46Ni0.46Ti0.05Li0.02)O2, can react with one equivalent of lithium during an initial discharge from 3.2 to 1.4 V vs. Li0. The electrochemical reaction, which corresponds to a theoretical capacity of 286 mAh/g, is hypothesized to form Li2(Mn0.46Ni0.46Ti0.05Li0.02)O2 that is isostructural with Li2MnO2 and Li2NiO2. Similar low-voltage electrochemical behavior is also observed with unsubstituted, standard LiMn0.5Ni0.5O2 electrodes (x=1). In situ X-ray absorption spectroscopy (XAS) data of Li(Mn0.46Ni0.46Ti0.05Li0.02)O2 electrodes indicate that the low-voltage (<1.8 V) reaction is associated primarily with the reduction of Mn4+ to Mn2+. Symmetric rocking-chair cells with the configuration Li(Mn0.46Ni0.46Ti0.05Li0.02)O2/Li(Mn0.46Ni0.46Ti0.05Li0.02)O2 were tested. These electrodes provide a rechargeable capacity in excess of 300 mAh/g when charged and discharged over a 3.3 to −3.3 V range and show an insignificant capacity loss on the initial cycle. These findings have implications for combating the capacity-loss effects at graphite, metal–alloy, or intermetallic negative electrodes against lithium metal-oxide positive electrodes of conventional lithium-ion cells.  相似文献   

11.
The transport properties and lithium insertion mechanism into the first mixed valence silver-copper oxide AgCuO2 and the B-site mixed magnetic delafossite AgCu0.5Mn0.5O2 were investigated by means of four probes DC measurements combined with thermopower measurements and in situ XRD investigations. AgCuO2 and AgCu0.5Mn0.5O2 display p-type conductivity with Seebeck coefficient of Q=+2.46 and +78.83 μV/K and conductivity values of σ=3.2×10−1 and 1.8×10−4 S/cm, respectively. The high conductivity together with the low Seebeck coefficient of AgCuO2 is explained as a result of the mixed valence state between Ag and Cu sites. The electrochemically assisted lithium insertion into AgCuO2 shows a solid solution domain between x=0 and 0.8Li+ followed by a plateau nearby 1.7 V (vs. Li+/Li) entailing the reduction of silver to silver metal accordingly to a displacement reaction. During the solid solution, a rapid structure amorphization was observed. The delafossite AgCu0.5Mn0.5O2 also exhibits Li+/Ag+ displacement reaction in a comparable potential range than AgCuO2; however, with a prior narrow solid solution domain and a less rapid amorphization process. AgCuO2 and AgCu0.5Mn0.5O2 provide a discharge gravimetric capacity of 265 and 230 mA h/g above 1.5 V (vs. Li+/Li), respectively, with no evidence of a new defined phases.  相似文献   

12.
LiMnC2O4(Ac) precursor in which Li+ and Mn2+ were amalgamated in one molecule was prepared by solid-state reaction at room-temperature using manganese acetate, lithium hydroxide and oxalic acid as raw materials. By thermo-decomposition of LiMnC2O4(Ac) at various temperatures, a series of Li1+y[Mn2−xLix]16dO4 spinels were prepared with Li2MnO3 as impurities. The structure and phase transition of these spinels were investigated by XRD, TG/DTA, average oxidation state of Mn and cyclic voltammeric techniques. Results revealed that the Li-Mn-O spinels with high Li/Mn ratio were unstable at high temperature, and the phase transition was associated with the transfer of Li+ from octahedral 16c sites to 16d sites. With the sintering temperature increasing from 450 to 850 °C, the phase structure varied from lithiated-spinel Li2Mn2O4 to Li4Mn5O12-like to LiMn2O4-like and finally to rock-salt LiMnO2-like. A way of determining x with average oxidation state of Mn and the content of Li2MnO3 was also demonstrated.  相似文献   

13.
《中国化学快报》2023,34(4):107494
Lithium rich layered oxide (LRLO) has been considered as one of the promising cathodes for lithium-ion batteries (LIBs). The high voltage and large capacity of LRLO depend on Li2MnO3 phase. To ameliorate the electrochemical performance of Li2MnO3, also written as Li(Li1/3Mn2/3)O2, we propose a strategy to substitute Mn4+ and Li+ in Mn/Li transition metal layer with Ti4+, which can stabilize the structure of Li2MnO3 by inhibiting the excessive oxidation of O2? above 4.5 V. More significantly, the unequal-valent substitution brings about the emergence of interlayer Li vacancies, which can promote the Li-ion diffusion based on the enlarged interlayer and increase the capacity by activating the Mn3+/4+ redox. We designed Li0.7[Li1/3Mn2/3]0.7Ti0.3O2 with high interlayer Li vacancies, which presents a high capacity (290 mAh/g at 10 mA/g) and stable cycling performance (84% over 60 cycles at 50 mA/g). We predict that this strategy will be helpful to further improve the electrochemical performance of LRLOs.  相似文献   

14.
The phase and chemical compositions of precipitates formed in the system Zn(VO3)2–HCl–VOCl2–H2O at pH 1?3, molar ratio V4+: V5+ = 0.1?9, and 80°C were studied. It was shown that, within the range 0.4 ≤ V4+: V5+ ≤ 9, zinc vanadate with vanadium in a mixed oxidation state forms with the general formula ZnxV4+ yV5+ 2-yO5 ? nH2O (0.005 ≤ x ≤ 0.1, 0.05 ≤ y ≤ 0.3, n = 0.5?1.2). Vanadate ZnxV2O5 ? nH2O with the maximum tetravalent vanadium content (y = 0.30) was produced within the ratio range V4+: V5+ = 1.5?9.0. Investigation of the kinetics of the formation of ZnxV2O5 ? nH2O at pH 3 determined that tetravalent vanadium ions VO2+ activate the formation of zinc vanadate, and its precipitation is described by a second-order reaction. It was demonstrated that, under hydrothermal conditions at pH 3 and 180°C, zinc decavanadate in the presence of VOCl2 can be used as a precursor for producing V3O7 ? H2O nanorods 50–100 nm in diameter.  相似文献   

15.
The potential insertion-electrode compounds Na1.2[V3O8] (NaV) and Na0.7Li0.7[V3O8] (NaLiV) were synthesized from mixtures of Na2CO3, Li2CO3 and V2O5, which were melted at 750° and subsequently cooled to room temperature. The structures of NaV and LiV contain sheets of polymerized (VOn) polyhedra, which are topologically identical to the sheet of polymerized polyhedra in Li1.2[V3O8] (LiV). Vanadium occurs in three different coordination environments: [2+3] V(1), [2+2+2] V(2) and [1+4+1] V(3). Calculated bond-valence sums indicate that V4+ occurs preferentially at the V(3) site, which agrees with the general observation that [6]-coordinated V4+ prefers [1+4+1]-rather than [2+2+2]-coordination. The M-cations Na and Li occur at three distinct sites, M(1), M(2) and M(3) between the vanadate sheets. The M(1)-site is fully occupied and has octahedral coordination. The M(2) sites are partly occupied in NaV and NaLiV, in which they occur in [4]- and [6]-coordination, respectively. Li partly occupies the M(3) site in NaLiV, in which it occurs in [3]-coordination. The M(2) and M(3) sites in NaLiV occur closer to the vanadate sheets than the M(2) sites in NaV and LiV. The shift in these cation positions is a result of the larger distance between the vanadate sheets in NaLiV than in LiV, which forces interstitial Li to move toward one of the vanadate sheets to satisfy its coordination requirements. Bond-valence maps for the interstitial cations Na and Li are presented for NaV, NaLiV and LiV. These maps are used to determine other potential cation positions in the interlayer and to map the regions of the structure where the Na and Li have their bond-valence requirements satisfied. These regions are potential pathways for Na and Li diffusion in these structures, and are used to explain chemical diffusion properties of Na and Li in the Na-Li-[V3O8] compounds.  相似文献   

16.
To study crystallization process of spinel-type Li1+xMn2−xO4, in-situ high-temperature X-ray diffraction technique (HT-XRD) was utilized for the mixture consisting of Li2CO3 and Mn2O3 as starting material in the temperature range of 25-700 °C. In-situ HT-XRD analysis directly revealed that crystallization process of Li1+xMn2−xO4 was significantly affected by the difference in the Li/Mn molar ratio in the precursor. Single phase of stoichiometric LiMn2O4 formed at 700 °C. The formation of single phase of spinel was achieved at the lower temperature than the stoichiometric sample as Li/Mn molar ratio in the precursor increased. Lattice parameter of the stoichiometric LiMn2O4 at 25 °C was 8.24 Å and expanded to 8.31 Å at 700 °C, which corresponds to the approximately 3% expansion in the unit cell volume. From the slope of the lattice parameter change as a function of temperatures, linear thermal expansion coefficient of the stoichiometric LiMn2O4 was calculated to be 1.2×10−5 °C−1 in this temperature range. When the Li/Mn molar ratio in Li1+xMn2−xO4 increased (x > 0.1), the spinel phase segregated into the Li1+yMn2−yO4 (x > y) and Li2MnO3 during heating, which involved the oxygen loss from the materials. During the cooling process from 700 °C, and the segregated phase merged into Li1+xMn2−xO4 with oxygen incorporation. Such trend directly observed by in-situ HT-XRD was supported by thermal gravimetric analysis as reversible weight (oxygen) loss/gain at higher temperature (500-700 °C).  相似文献   

17.
The spinels of the system LixMn1?xV2O4 (0 ? x ? 1) have been prepared at 700–750°C from LiV2O4 and MnV2O4. The lattice constants decrease linearly with increasing x. In the region x>0.75, the d-electrons of V should be delocalized as the VV distances are lower than the critical VV separation of 2.94 Å. Experimentally, the samples with x>0.6 show no IR absorption bands and the Seebeck coefficient is near zero. The Seebeck coefficient can be described with a model of intermediate polarons and can be expressed by the equation Θ = 198 log [1 + (1 ? x)5x].  相似文献   

18.
The effect of VO2+ ions on the composition and kinetics of calcium polyvanadate precipitation from solutions with 1.5 ≤ pH ≤ 9 at 80–90°C has been studied. For 1,5 ≤ pH < 3 and V4+/V5+ = 0.11–9, the precipitated compounds have the general formula Ca x V y 4+ V 12?y 5+ O31?δ · nH2O (0.8 ≤ x ≤ 1.06, 2 ≤ y ≤ 3, 0.94 ≤ δ ≤ 1.5). The maximum vanadium(IV) proportion (y = 3) in the precipitates is achieved when V4+/V5+ = 0.5?1.0 in the solution and pH is 3. Polyvanadate precipitation at pH 1.7 has a long induction period (up to 30 min), which is not observed for V4+/V5+ > 0.1. Precipitation in solutions with pH 3 occurs only when VO2+ ions are added, with a maximum rate near V4+/V5+ = 0.2 and in presence of chloride ions. The processes are controlled by a secondorder reaction on the polyvanadate surface.  相似文献   

19.
MnxOy/SBA-15 catalysts were prepared via the impregnation method and utilized for toluene removal in dielectric barrier discharge plasma at atmospheric pressure and room temperature. The catalysts were characterized by X-ray diffraction, N2 adsorption–desorption, Raman spectroscopy, X-ray photoelectron spectroscopy, H2 temperature-programmed reduction, and O2 temperature-programmed desorption methods. The characterization results indicated that manganese loading did not influence the 2D-hexagonal mesoporous structure of SBA-15. The catalyst had various oxidation states of manganese (Mn2+, Mn3+, and Mn4+), with Mn3+ being the dominant oxidation state. Toluene removal was investigated in the environment of pure N2 and 80 % N2 + 20 % O2 plasma, showing that the toluene removal efficiency and CO2 selectivity were noticeably increased by MnxOy/SBA-15, especially in the presence of 5 % Mn/SBA-15. This activity was closely related to the high dispersion of 5 % Mn on SBA-15 and the lowest reduction temperature exhibited by this catalyst. Mn loading increased the yield of CO2 in the N2 plasma and promoted the deep oxidation of toluene. During toluene oxidation, oxygen exchange might follow a pathway, wherein bulk oxygen was released from the MnxOy/SBA-15 surface; gas-phase O2 subsequently filled up the vacancies created on the oxide. Each of the manganese oxidation states played an important role; Mn2O3 was considered as a bridge for oxygen exchange between the gas phase and the catalyst, and Mn3O4 mediated transfer of oxygen between the catalyst and toluene.  相似文献   

20.
The phase diagram of the pseudo-ternary MnV2O6LiVMoO6MoO3 system has been determined with DTA and X-ray phase analysis. Its outstanding feature is the very large range of stability of the quaternary solid solution α-ML? described by the formula Mn1?x?yLiy?xV2?2x?yMo2x+yO6 (? = cation vacancy), and crystallizing in the monoclinic brannerite-type structure. In this solution y may vary between 0 and 1, which corresponds to the entire miscibility of MnV2O6 and LiVMoO6; x may change between 0 and xmax depending on y (if, e.g., y equals 0.00, 0.40, 0.84, or 1.00, xmax is 0.45, 0.28, 0.16, or 0.00, respectively). Depending on composition, α-ML? is stable up to 540–710°C. Other features of the diagram, including the liquidus, are described in detail. The dependence of unit cell dimensions on composition of α-ML? has been determined. On passing from MnV2O6 to LiVMoO6, the lattice parameter b and unit cell volume increase, c and c sin β decrease, and a changes insignificantly. These changes are interpreted by taking into account the ionic radii of the components and the specific details of the brannerite-type structure. ML? solid solutions were prepared using the amorphous citrate precursor method.  相似文献   

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