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1.
Phase equilibria in the system SrO-CdO-V2O5 in air were established from data obtained by DTA, quenching, and high-temperature solid-state reaction experiments. The SrO-V2O5 boundary system contains 4 compounds at SrO to V2O5 molar ratios of 4:1, 3:1, 2:1, and 1:1. A fifth compound with a molar composition of ∼10:3 with the apatite crystal structure was also found; it may, however, be a hydroxyapatite phase. The CdO-V2O5 system contains the compounds 3CdO·V2O5, 2CdO·V2O5, and CdO·V2O5. The latter compound exhibits a rapid reversible polymorphic transition at 180°C. Complete solid solubility exists in the SrO-CdO system. The most probable compatibility relations were determined from the data available for the SrO-CdO-V2O5 ternary system. Limited solid solubility exists between SrO·V2O5 and CdO·V2O5, and the high-temperature CdO·V2O5 polymorph is stabilized to room temperature by solid solution of SrO·V2O5. Evidence for the existence of 2 ternary compounds with limited local solid solubility is also presented.  相似文献   

2.
Tentative phase relations in the binary system BnOa-A12O3 are presented as a prerequisite to the understanding of the system Li2O-B2O3-Al2O3. Two binary compounds, 2A12O3.B2O3 and 9A12O3.-2B2O3, melted incongruently at 1030° f 7°C and about 144°C, respectively. Two ternary compounds were isolated, 2Li2O.A12O3.B2O3 and 2Li2O. 2AI2O3. 3B203. The 2:1:1 compound gave a melting reaction by differential thermal analysis at 870°± 20° C, but the exact nature of the melting behavior was not determined. The 2:2:-3 compound melted at 790°± 20° C to LizO.-5Al2O3 and liquid. X-ray diffraction data for the compounds are presented and compatibility triangles are shown.  相似文献   

3.
Subsolidus phase equilibria in the system La2O3-P2O5 were established. The system contains six intermediate compounds having molar La2O3:P2O5 ratios of 3:1,7:3,1:1,1:2,1:3, and 1:5. It was found that the 3:1 compound has a phase transformation at 935°C. The 1:2 compound decomposes to a mixture of 1:1 and 1:3 at 755°C. The 1:3 compound melts incongruently to 1:1 and liquid at 1235°C and the 1:5 compound melts congruently at 1095°C. None of the lanthanum phosphates have lower temperature limits of stability.  相似文献   

4.
The phase diagram for the system NdI2O3-P2O5 was constructed. Six intermediate compounds, having molar Nd2O3: P2O5 ratios of 3:1, 7:3, 1:1, 1:2, 1:3, and 1:5, were identified. The 3:1, 7:3, and 1:1 compounds are stable to at least 1500°C. The 1:2 compound decomposes to 1:1 and 1:3 at 730 ± 5°C. The 1:3 and 1:5 compounds melt congruently at 1280 ± 5° and 1055 ± 5°C, respectively. None of the neodymium phosphates show lower temperature limits of stability.  相似文献   

5.
The phase equilibrium diagram of the system ThO2-Nb2O was redetermined near the composition Th2Nb2O9. This phase was found to melt incongruenlly at 1362°C, with a eutectic temperature at ∼1350°C. The peritectic and eutectic compositions must occur between 60 and ∼64 mol % ThO2. From single crystal and powder X-ray diffraction data, Th2 Nb2O9 was found to have a primitive monoclinic unit cell with a = 6.711(1), b = 25.254(5), c=7.757(1)×10−1nm, β=90.46 (1)°.  相似文献   

6.
The ternary system SrO-CeO2-TiO2 was investigated using X-ray diffractometry. The formation of a new compound, Sr2Ce2Ti5O16, was established, and its compatibilities with SrO, SrCeO3, and SrTiO3 were studied. The results revealed the existence of a series of compounds Sr6–12xCe6xTi5O16 and solid solutions Sr2+nCe2Ti5+nO16+3n ( n ≤ 6).  相似文献   

7.
The phase equilibrium relations in the systems Y2O3-Al2O3 and Gd2O3-Fe2O3 were examined. Each system has two stable binary compounds. A 3:s molar ratio garnet-type compound exists in both systems. The 1:1 distorted perovskite structure is stable in the system Gd2O3-Fe2O3 but only metastable in the system Y2O3-AI2O3. This interesting example of metastable formation and persistence of a compound with ions of high Z/r values explains the discrepancies in the literature on the structure of the composition YA1O3. A new 2:1 molar ratio cubic phase has been found in the system Y2O3-A12O3. Since silicon can be completely substituted for aluminum in this compound, the aluminum ions are presumably in fourfold coordination.  相似文献   

8.
Single-phase, cubic solid solutions of baseline composition 25% Y2O3—75% Bi2O3 with and without aliovalent dopants were fabricated by pressureless sintering of powder compacts. CaO, SrO, ZrO2, or ThO2 was added as an aliovalent dopant. Sintered samples were annealed between 600° and 650°C for up to 4000 h. Samples doped with ZrO2 or ThO2 remained cubic, depending upon the dopant concentration, even after long-term annealing. By contrast, undoped, CaO-doped, and SrO-doped samples transformed to the low-temperature, rhombohedral phase within ∼ 200 h. Conductivity measurements showed no degradation of conductivity in samples that did not undergo the transformation. In samples that underwent the transformation, a substantial decrease in conductivity occurred. The enhanced stability of the ZrO2- and ThO2-doped samples is rationalized on the basis of suppressed interdiffusion on the cation sublattice.  相似文献   

9.
A tentative phase diagram for the system Al203-Nd2O3 is presented. Three compounds were obtained: a β -A12O3-type compound, the perovskite NdAlO3, and Nd4Al2O9. The perovskite melts congruently (mp 2090°C), and the two other compounds exhibit incongruent melting behavior: β -Nd/Al2O3, mp 1900°C; Nd4Al2O9, mp 1905°C. Two eutectics exist with the following compositions and melting points: 80 mol% Al2O3, 1750°C; 23 mol% Al2O3,1800°C. Nd4Al2O9 decomposes in the solid state at 1780°C.  相似文献   

10.
Subsolidus equilibrium relations in a portion of the system Li2O-Fe2O3-Al2O3 in the temperature range 500° to 1400°C. have been determined near po2 = 0.21. Of particular interest in this system is the LiFe5O8-LiAl5O8 join, which shows complete solid solution above 1180°C. Below this temperature the solid solution exsolves into two spinel phases. At 600°C. approximately 15 mole % of each compound is soluble in the other. The high-temperature solid solution and the low-temperature exsolution dome extend into the ternary system from the 1:5 join. There is no appreciable crystalline solubility of LiFeO2 or of α-Fe2O3 in LiFe5O8. An attempt to confirm HFe5O8 as the correct formulation of the magnetic ferric oxide "γ-Fe2O3" was inconclusive, but in the absence of positive evidence, the retention of γ-Fe2O3 is recommended. All the metallic oxides of the Group IV elements increase the temperature of the monotropic conversion of -γ-Fe2O3 to α-Fe2O3. Silica and thoria have a greater effect on this conversion than does titania or zirconia.  相似文献   

11.
The compounds SrPu2Ti4O12, Pu2Ti3O8.79, and Pu2Ti2O7, where plutonium is in the (III) oxidation state, were prepared and identified via X-ray diffraction (XRD). The solid solubility limit of Pu2Ti2O7 in Ln2Ti2O7 (Ln = Gd, Er, or Lu) was also studied via XRD; it was determined that the solubility of Pu2Ti2O7 increased as the radius of the lanthanide ion in the host compound decreased. Attempts to synthesize Sr2Pu2 Ti5O16 and Sr2Ce2–yPuyTi5O16 solid solutions, where plutonium is in the (IV) oxidation state, were unsuccessful.  相似文献   

12.
Phase relations in the system Na2O· Al2O3-CaO· Al2O3-Al2O3 at 1200°C in air were determined using the quenching method and high-temperature X-ray diffraction. The compound 2Na2O · 3CaO · 5Al2O3, known from the literature, was reformulated as Na2O · CaO · 2Al2O3. A new compound with the probable composition Na2O · 3CaO · 8Al2O3 was found. Cell parameters of both compounds were determined. The compound Na2O · CaO-2Al2O3 is tetragonal with a = 1.04348(24) and c = 0.72539(31) nm; it forms solid solutions with Na2O · Al2O3 up to 38 mol% Na2O at 1200°C. The compound Na2O · 3CaO · 8Al2O3 is hexagonal with) a = 0.98436(4) and c = 0.69415(4) nm. The compound CaO · 6Al2O3 is not initially formed from oxide components at 1200°C but behaves as an equilibrium phase when it is formed separately at higher temperatures. The very slow transformation kinetics between β and β "-Al2O3 make it very difficult to determine equilibrium phase relations in the high-Al2O3 part of the diagram. Conclusions as to lifetime processes in high-pressure sodium discharge lamps can be drawn from the phase diagram.  相似文献   

13.
A mathematical model of the liquidus surface based on a reduced polynomial method was proposed for the system HfO2-Y2O3-Er2O3. The results of calculations according to this model agree fairly well with the experimental data. Phase equilibria in the system HfO2-Y2O3-Er2O3 were studied on melted (as-cast) and annealed samples using X-ray diffraction (at room and high temperatures) and micro-structural and petrographic analyses. The crystallization paths in the system HfO2-Y2O3-Er2O3 were established. The system HfO2-Y2O3-Er2O3 is characterized by the formation of extended solid solutions based on the fluorite-type (F) form of HfO2 and cubic (C) and hexagonal (H) forms of Y2O3 and Er2O3. The boundary curves of these solid solutions have the minima at 2370°C (15. 5 mol% HfO2, 49. 5 mol% Y2O3) and 2360°C (10. 5 mol% HfO2, 45. 5 mol% Y2O3). No compounds were found to exist in the system investigated.  相似文献   

14.
The effect of additives on the sintering of ThO2 and ThO2-Y2O3 compacts and loose powders was studied by isothermal shrinkage measurements and by scanning electron micrography. Small amounts of the oxides of Ni, Zn, Co, and Cu reduced the sintering temperature. The behavior of NiO at a concentration of 0.8 wt% (2.5 mol%) was studied in detail and found to yield high-density bodies at temperatures below 1500°C. The presence of Y2O3 as a separate phase increases the rate of sintering of ThO2, but smaller amounts of NiO are much more potent. The major portion of the densification occurs very rapidly and is followed by a much slower sintering process typical of volume diffusion. The fast early shrinkage may be caused by the capillary forces of a liquid, but since no evidence of melting was found, a solid-state mechanism may be responsible.  相似文献   

15.
Nine compositions containing 40 to 68% B2O3 were used to study the high-lithia portion of the system Li2O-B2O3 by quenching and differential thermal analysis methods. The compounds 3Li2O 2B2O3 and 3Li2O B2O3 melted incongruently at 700°± 6°C, and 715°± 15°C., respectively. The compound 2Li2O B2O3 is assumed to dissociate slightly below 650°± 15° C., although the data could also be interpreted as in-congruent melting. Below 600°± 6°C. it does dissociate to the 3:2 and 3:1 compounds. In this narrow temperature interval the 2:1 compound had an inversion at 618°± 6°C. Both forms of the 2:1 compound could be quenched to room temperature. X-ray diffraction data for the compounds are tabulated, and the complete phase diagram for the system Li2O-B2O3 is presented.  相似文献   

16.
Subsolidus phase relations in the binary system PbO-Ta2O5 were investigated by the quenching method. The following compounds were identified by X-ray diffraction patterns: PbO -2Ta2O5, PbO Ta2O6, 3PbO 2Ta2P5, 2PbO Ta2O6, 5PbO -2Ta2O5, and 3PbOTa2O5 The 1:1 compound has rhombohedral symmetry when it is prepared below 1150°C. Above this temperature, it yields an orthorhombic phase. Compounds with the same ratio of lead oxide to pentoxide exist in the systems PbO-Ta2O6 and PbO-Nb2O5.  相似文献   

17.
The existence of stable and metastable forms of 2ZrO2·P2O5 and the subsolidus phase relations in the system ZrO2-ZrP2O7 were confirmed before investigation of the ternary system. The synthesis and thermal behavior of ZrW2O8 were reinvestigated, and the system WO3-P2O5 was examined cursorily. A ternary compound, 2ZrO2·WO3·P2O5, was found, and compatibility triangles for the system between 1105° and 1150°C were established. The ternary compound is compatible with ZrO2, WO3, and three binary compounds, giving rise to five composition triangles. In addition, ZrP2O7, WO3, and "W2O3(PO4)2" were compatible.  相似文献   

18.
Phase equilibria data, obtained both by differential thermal analysis and by quenching, are presented for the system Na2O-Nb2O5. Five compounds corresponding to the formulas 3Na2O.1Nb206, lNa2O. 1Nb2O5, lNa2O 4Nb2O6, lNazO.7Nb2O5, and lNa2O. 10Nb2O6 have been found. The compound 3Naz0.lNb2O5 melts congruently at 992°C. The compounds 1Na2O. 4Nb2O6, lNa2O.7Nb2O, and 1Na2O. 1Onb2O5 melt incongruently at 1265°, 1275°, and 1290°C., respectively. The well-known perovskite structure phase NaNbO3 was found to melt congruently at 1412°C. The transition temperatures in NaNbO5 were checked by thermal analysis and only the major structural changes at 368° and 640°C. could be detected. A new disordered form of NaNbO3 could be preserved to room temperature by very rapid quenching.  相似文献   

19.
The subsolidus phase equilibria in the system Bi2O3-TiO2-Nb2O5 at 1100°C were determined by solid-state reaction techniques and X-ray powder diffraction methods. The system was found to contain 4 ternary compounds, i.e. Bi3TiNbO9, Bi7Ti4NbO21, a cubic pyrochlore solid solution having a compositional range of 3Bi2O3· x TiO2 (7– x )Nb2O5 where x ranges from 2.3 to 6.75, and an unidentified phase, 4Bi2O3·11TiO2·5Nb2O5.  相似文献   

20.
In the binary system PbO–LazO3 only one compound, 4PbO.La2O3, exists; it is flanked by two eutectics. The structure of the compound, although of lower symmetry, is intimately related to the C modification of the rare earths. Below 800° to 1000°C, metastable solid solutions are formed from oxide mixtures coprecipitated from mixed solutions of the nitrates, the cubic parameter a = 5.66 A, if extrapolated to pure La2O3, corresponding to half the a parameter of the C form of La2O3. The solid solutions existing between the compositions La2O3–2Pb0 and pure La2O3 have a cubic face–centered lattice and obey Vegard's rule. The systems of PbO with Sm2O3 and Gd2O8 are quite similar to that with La2O3. The compound Sm2O3.4Pb0 decomposes at 1000°C with evaporation of PbO; Sm2O3 remains in the B modification.  相似文献   

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