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1.
Copper oxidation states, structure and properties of xCuO · (50-x)PbO · 50B2O3 glasses were investigated. Both infrared (IR) and 11B magic angle spinning nuclear magnetic resonance (MAS NMR) spectroscopies were employed to determine the tetrahedral BO4 fraction in the glasses as a function of CuO content. IR study indicates that the replacement of Pb2+ by Cu2+ ions increases the BO3 units by converting BO4- containing groups into ring type metaborate groups. The oxidation states of copper ions in the glasses have been studied using both X-ray photoelectron spectroscopy (XPS) and the wet chemical method. For high CuO containing (?30 mol%) glasses, high Cu+ ion concentrations (Cu+/Cutot.>0.3) result in a relatively slow disproportionation of B4-containing groups because of the small coordination number of Cu+ compared to Cu2+ ions. Effects of both glass structure and redox states of copper ions on glass properties including density, Vickers’ hardness, coefficient of thermal expansion, and chemical durability have been discussed.  相似文献   

2.
Barium-sodium borosilicate glasses containing upto 6 wt% fluoride ions were prepared by conventional melt quench method and characterized by 19F, 29Si and 11B nuclear magnetic resonance (NMR) techniques.19F NMR studies have confirmed the presence of mainly linkages like F-Si(n) or F-B(n) along with F-Ba(n). Their relative concentrations are unaffected by F content in the glass. Incorporation of fluoride ions in the glass is associated with significant reduction in the nonbridging oxygen concentration attached to silicon, as revealed by the increase in the concentration of Q3 structural units of silicon at the expense of Q2 structural units. 11B NMR studies have established that the relative concentrations of BO3 structural units are higher for F ion containing glasses compared to the one without F ion incorporation. The observed increase in the relative concentrations of Q3 structural units of silicon and BO3 structural units with fluoride ion incorporation in the glass has been attributed to the formation of F-Ba(n) type of linkages, thereby reducing the concentration of network modifying cations for breaking the Si-O-Si/B-O-B linkages. Formation of such structural units weakens the glass network thereby decreasing the glass transition temperatures.  相似文献   

3.
Bulk glasses of the series (1 ? x)[0.5K2O–0.1B2O3–0.4P2O5]–xNb2O5 with x = 0–45.7 mol% Nb2O5 were prepared by slow cooling in air and investigated by Raman, 31P, and 11B MAS NMR spectroscopy. The incorporation of Nb2O5 into the parent borophosphate glass results in a substantial increase in the glass transition temperature and chemical durability of glasses. Raman spectra showed that Nb atoms form distorted NbO6 octahedra, which are isolated at low Nb2O5 content, whereas at higher Nb2O5 content they form clusters. 11B NMR spectra of the glasses revealed the interaction between Nb2O5 and BO4 tetrahedral units, which results in a partial transformation of tetrahedral BO4 units to trigonal BO3 units and the formation of mixed B(OP)4?n(ONb)n units.  相似文献   

4.
B11 NMR spectra have been used to study the structure of glasses in the system K2OB2O3P2O5. The results indicate that the glasses do not contain an appreciable number of boron atoms in BO3 units with one or two non-bridging oxygens. The fraction N4 of boron atoms in BO4 units is measured and analyzed according to a structural model containing the following elements. (1) If the binary borophosphate system forms glasses, they consist of a borophosphate (BPO4) network and a borate network for K<1, or a borophosphate (BPO4) network and a phosphate network for K>1, where K = mol.% P2O5/mol.% B2O3. (2) The conversion rates of BO4 units (i.e. the rate of production or destruction by added oxygens) in the borate network and the borophosphate (BPO4) network are given as (+2) and (?0.38), respectively. (3) K+1 ions are proportionally shared between the two networks; (i.e. between the borate and borophosphate (BPO4) networks for K<1, and between the phosphate and borophosphate (BPO4) networks for K>1).  相似文献   

5.
The 11B NMR spectra of borate glasses can be accurately computer-simulated using a simple model for the electric field gradient at a boron site in the BO3 and BO4 structural units, assuming these structural units are relatively undistorted. Deviations from the average OBO bond angle in these two sites are determined from the simulations to be less than ± 2° in borate glasses. There is no evidence for increasing distortion in the fundamental structural units with increasing metal oxide content.  相似文献   

6.
Two series of boroaluminosilicate glasses having varying mole ratios of B2O3/Na2O (series 1) and B2O3/SiO2 (series II) were prepared by conventional melt-quench method. Based on 29Si and 11B MAS NMR studies, it has been established that for series I glasses up to 15 mol% B2O3 content, Na2O preferentially interacts with B2O3 structural units resulting in the conversion of BO3 to BO4 structural units. Above 15 mol% B2O3 for series I glasses and for all the investigated compositions of the series II glasses, silicon structural units are unaffected whereas boron exist in both trigonal and tetrahedral configurations. Variation of microhardness values of these glasses as a function of composition has been explained based on the change in the relative concentration of BO4 and BO3 structural units. These glasses in the powder form can act as efficient room temperature ion exchangers for metal ions like Cu2+. It is seen that the ion exchange does not affect the boron and silicon structural units as revealed by IR studies.  相似文献   

7.
Anomalous physical properties (refractive index and density) of B2O3BaTiO3Na2O ternay glasses are determined and discussed on the basis of the structure present in the glasses and evidenced by vibrational Raman spectroscopy.These glasses behave in a manner analogous to the alkali B2O3X2O binary glasses for molar ratio R = basic oxide/B2O3 up to 0.3, with oxygen binding by means of bridging bonds while boron coordination changes from the trigonal to tetrahedral type. The phenomenon is indicated by a progressive weakening of the 806 cm?1 peak (attributable to a breathing vibration of the boroxol unit) and by a concomitant strengthening of the ~775 cm?1 peak (attributable to a vibrational mode of boroxol units, or derived units, containing at least one 4-coordinate boron atom). For higher R values the Raman spectra bring to light the progressive demolition of the structural units responsible for the 775 cm?1 Raman peak, which gives rise (the transformation is complete for R ~ 1) to two new main structural units, orthoborate [BTi4O10]?1 (peak at 845 cm?1) and metaborate BO2? (peak at 715 cm?1).  相似文献   

8.
H. Doweidar 《Journal of Non》2009,355(6):348-354
Studies on xRO · 30Bi2O3 · (70−x)B2O3 glasses have been carried out (0 ? x ? 30 mol%, R = Zn, Ba). Elastic properties and Debye temperature have been investigated using sound velocity measurements at 4 MHz. The ultrasonic parameters along with the IR spectroscopic studies have been employed to explore the role of divalent cations in the structure of the studied glasses. Analysis of infrared spectra indicates that RO is preferentially incorporated into the borate network, forming BO4 units. It is assumed that Bi2O3 enters the structure in the form of BiO6 only. The change of density and molar volume with RO content reveals that BO4 units linked to R2+ cations are denser than those linked to positive sites in the Bi2O3 network. Predicted values of four co-ordinated boron put forward questions about the reliability of assignment of structural units that Bi2O3 may form.  相似文献   

9.
《Journal of Non》2007,353(16-17):1612-1617
Sodium borosilicate glasses containing different amounts of BaO were prepared by a conventional melt quench method and characterized for their structural aspects by 29Si, 11B NMR and IR spectroscopy. From 29Si MAS NMR studies, it has been inferred that these glasses consist of Q2 and Q3 structural units of silicon and that the addition of BaO results in the marginal conversion of Q3 to Q2 structural units. There is no direct interaction between Ba2+ ions and boron structural units, as revealed by the identical values of the relative concentration of BO3 and BO4 structural units and quadrupolar coupling constant values for the BO3 structural units. The identical values of glass transition temperature and vibrational frequencies corresponding to Si–O–Si/Si–O–B and B–O linkages of all the samples further support this. As the borosilicate network is unaffected, the systematic increase in the values of thermal expansion coefficient with increase in BaO content has been attributed to the increase in the relative concentration of less rigid Ba–O linkages compared to the more rigid Si–O and B–O linkages in the glass. Such studies will be useful for the development of matrices for the management of nuclear waste generated during the reprocessing of the spent fuel from thoria based reactors.  相似文献   

10.
Molar volumes and optical absorption spectra of Ni2+ ions were measured for sodium and potassium borosilicate glasses of the compositions xR2O·B2O3·rSiO2 (0.01 < x < 2.0; r = 1 and 2), where parameters x and r represent respectively the molar ratios R2O/B2O3andSiO2/B2O3. The presence of structural groups was discussed from the results. It was confirmed that addition of an alkali oxide changed BO3 units to RBO4 units in the range x < 0.55 for r=1 and x < 0.6 for r=2, while it created ROSiO3 units in the range 0.55 < x < 0.8 for r=1 and 0.6 x? < 0.9 for r=2. In the range x > 0.8 for r=1 and x > 9 for r=2, ROSiO3 and ROBO2 units were created by the alkali addition. Here ROBO2 units were also formed as a result of self-decomposition of RBO4 units. The volume of void associated with a BO4 unit was calculated and compared with the size of sodium and potassium ions. It was shown that sodium ions were small enough to be accommodated in the void whereas potassium ions were too large. This could explain the composition dependence of the molar volume of the sodium and potassium borosilicate glasses in the composition range x < 0.55 for r = 1 and x < 0.6 for r =2.  相似文献   

11.
《Journal of Non》2006,352(28-29):2958-2968
The structure of RNa2O · B2O3 · KSiO2 · xP2O5 (0.5 < R < 2; 0.86 < K < 3) borosilicate glasses has been studied by nuclear magnetic resonance (NMR). 31P magic angle spinning (MAS), double quantum-magic angle spinning (DQ-MAS) and 31P–11B transfer of populations under double resonance magic angle spinning (TRAPDOR MAS) NMR were used to determine the phosphate speciation in the glasses and their connectivity with the borosilicate network. The structure of the glass network was characterized with 11B, 29Si and 23Na MAS NMR. Ab initio calculations of the 31P chemical shielding were carried out in order to confirm the connectivity between phosphorus and the structural units of the borosilicate glass network. Na3PO4 (monophosphate), Na4P2O7 (diphosphate) and P–O–B species (mono- and diphosphate groups with borate units as the next nearest neighbors) are found all along the compositional range studied. The proportion of the P–O–B groups increases as the glass optical basicity decreases, while the proportions of mono- and diphosphate species decrease. The change in the glass transition temperature of the phospho-borosilicate glasses with respect to that of the borosilicate ones is discussed in terms of the structural characterization. The formation of phosphate species gives rise to the increase in Tg, which is attributed to the re-polymerization of the silicate network, while the formation of P–O–B bonds weakens the glass network and produces a decrease in the glass transition temperature.  相似文献   

12.
Glasses in the (Er2O3)x·(B2O3)(60 ? x)·(ZnO)40 system (0  x  15 mol%) have been prepared by the melt quenching technique. X-ray diffraction, FTIR spectroscopy, UV-VIS spectroscopy and ab initio calculations studies have been employed to study the role of Er2O3 content on the structure of the investigated glass system.X-ray diffraction and infrared spectra of the glasses reveal that the B–O–B bonds may be broken with the creation of new non-bridging oxygen ions facilitating the formation of Er–O–B linkages. The excess of oxygen can be accommodated in the network by the conversion of sp2 planar [BO3] units to the more stable sp3 [BO4] tetrahedral structural units. The linkages of the [BO4] structural units can polymerize in [B3O9]? 9 cyclic trimeric ions which will produce the ErBO3 crystalline phase. An increase of the efficiency corresponding to the 4I15/2 state to 4I11/2 state (4f–4f) transitions of Er+ 3 ions was observed for the erbium oxide richest glasses.Ab initio calculations on the structure of the matrix network show the thermodynamic instability of the [BO4], [ZnO4] and [Zn4O] structural units. Formation of three-coordination oxygens was necessary to compensate shortage of oxygens from zinc ions.  相似文献   

13.
A search for compounds of the NaBaR(BO3)2 composition (where R = La3+, Nd3+, Gd3+, or Yb3+) is performed by solid state synthesis and spontaneous crystallization. A new compound, NaBaYb(BO3)2, is found in this series. It crystallizes in space group $R\bar 3$ and belongs to the family of sublayer complex orthoborates with isolated BO3 groups NaBaR(BO3)2 (R = Y, Sc, and Yb). Theoretical X-ray powder diffraction patterns of NaBaY(BO3)2, NaBaSc(BO3)2, and NaBaYb(BO3)2 are calculated based on single-crystal data.  相似文献   

14.
ZnO–B2O3–P2O5 glasses doped with MoO3 were investigated in the series (100?x)[0.5ZnO–0.1B2O3–0.4P2O5]–xMoO3, where bulk glasses were obtained by slow cooling in air within the compositional region of 0 ? x ? 60 mol% MoO3. The incorporation of MoO3 into the parent zinc borophosphate glass results in a weakening of bond strength in the structural network, which induces a decrease in chemical durability and glass transition temperature. Raman spectra reflect the incorporation of molybdate groups into the glass network of the studied glasses by the presence of the polarized vibrational band at ≈976 cm?1 ascribed to the MOx symmetric stretching vibrations and the depolarized band at ≈878 cm?1 ascribed to the Mo–O–Mo stretching vibration. The incorporation of molybdate units into the glass network results in the depolymerization of phosphate chains and the formation of P–O–Mo bonds, as reflected in Raman and 31P NMR spectra. According to the 11B MAS NMR spectra, tetrahedral B(OP)4?x(OMo)x units are formed in the glasses, whereas only a small amount of BO4 units is converted to BO3 units in the MoO3-rich glasses.  相似文献   

15.
Y.H. Yun  P.J. Bray 《Journal of Non》1978,27(3):363-380
The 11B NMR spectra have been used to study the structure of glasses in the system Na2OB2O3SiO2. The fraction of BO4 units, and the fraction of BO3 units with one or two nonbridging oxygens, are measured and analyzed according to a structural model. The results indicate that: (1) for a sodium oxide to boron oxide ratio of 0.5 or less, the Na+1 ions are attracted primarily by the borate network; therefore, the ternary glasses can be viewed as binary sodium borate glasses diluted by SiO2; (2) when the sodium oxide to boron oxide ratio exceeds 0.5, the additional Na2O results in the formation of [BSi4O10]?1 units at the expense of diborate and SiO4 units. In this process, Na+1 ions are still taken up only by the borate network. After all the available SiO4 units are consumed to form [BSi4O10]?1 units, additional Na+1 ions are proportionally shared between the borate and silicate networks.  相似文献   

16.
《Journal of Non》2007,353(44-46):4076-4083
Structural and thermal properties are reported for a range of caesium oxide-containing alkali borosilicate glasses, of the form xCs2O(100  x)ZMW (0 < x < 10), where ZMW represents a variety of simulated base-glasses. Glass densities increase and glass transition temperatures decrease with increase in caesium oxide concentration. Mass-loss from the melt is found to depend on composition in the same manner as the fraction of silicon Q3 units, resolved from 29Si MAS NMR, and is related to the presence of danburite medium-range order units, resolved from 11B MAS NMR. Volatilization is shown to occur even in the absence of caesium oxide and the mixed alkali borosilicate composition of the volatile species, evolved from the melt at high temperature, is independent of the starting composition of the glass.  相似文献   

17.
A combined nuclear magnetic resonance, infrared and Raman spectroscopic study on the effect of water dissolution on the structure of B-bearing aluminosilicate glasses is presented. The base composition was albite (NaAlSi3O8) to which different amounts of B2O3 (4.8, 9.1, 16.7 wt%) were added. Hydrous glasses containing 4.4 ± 0.1 wt% water were synthesized at pressures of 2000 bar. The results show that B dissolves in both dry and hydrous glasses by forming predominantly trigonal BO3 groups although some tetrahedral BO4 is also present. In anhydrous glasses prepared at high pressures (above 10 kbar) the fraction of BO4 increased. The hydrous glasses contain more BO4 groups compared to the dry counterparts, suggesting that this species is stabilized by water. The Raman and NMR (17O, 27Al, 29Si) spectra show that B interacts with the aluminosilicate network by formation of Si-O-B and probably Al-O-B units. In the hydrous glasses the water speciation changes significantly towards higher hydroxyl concentrations with increasing B-content. The NIR peaks, which are related to OH groups and molecular H2O, develop additional shoulders, suggesting that possibly B-OH complexes are formed.  相似文献   

18.
11B and 27Al nuclear magnetic resonances (NMR) in glasses of the NABAL system Na2OB2O3Al2O3 have been studied as a function of composition. From the boron data, the fraction of four-coordinated BO4 units has been determined via computer analysis of the NMR spectra; the method is similar to that employed previously for binary and other ternary borate glasses. The 27Al NMR indicates no abrupt change in the average aluminum environment. Certain linear relationships have been found which yield detailed information on the competing processes of BO3, BO4 and AlO4 formation, and the formation of triclusters consisting of three tetrahedra having one oxygen in common. Furthermore, it is concluded that the oxygen available for the formation of various aluminum-containing species is a function of the soda concentration only and that the conversion to AlO4 is favored as compared with BO4.  相似文献   

19.
It is shown that the B10 spectra for sodium borate glasses are sensitive to the different structural groups in the glasses. Five boron sites are inferred from the data: two 4-coordinated sites and three 3-coordinated sites. The two 4-coordinated boron sites are identified as BO4 units connected to all BO3 units, and BO4 units connected to one BO4 unit and three BO3 units. The three 3-coordinated boron sites are identified as BO3 units connected to: (1) all BO3 units; (2) a mixture of BO3 and BO4 units; and (3) all BO4 units. These five sites can be interpreted in terms of Krogh-Moe's structural model of alkali borate glasses, wherein the fraction of each structural group can be determined for eight sodium borate glasses spanning the compositional range from 0 to 35 mol% Na2O. The resulting fractions are consistent with Krogh-Moe's structural model.  相似文献   

20.
In situ high-temperature nuclear magnetic resonance (NMR) spectroscopy can be very useful for probing changes in structure and dynamics in glass-forming liquids, and is a unique method for observing chemical exchange among structural species (e.g. BO3–BO4, Qn–Qn+1, and NBO–BO) at the seconds to microseconds time scales. High-temperature 11B MAS NMR line shape measurements were made at about 100 K above the glass transitions on (Na2O)0.3(B2O3)0.7 and (Na2O)0.2(B2O3)0.21(Al2O3)0.08(SiO2)0.51 glass-forming liquids. BO3 and BO4 groups are well resolved in 11B MAS NMR spectra at 14.1 T with sample spinning at 5000 Hz. At higher temperatures, partial peak coalescence occurred due to exchange of BO3 and BO4. Temperature effects on borate speciation were also determined by varying the fictive temperature (Tf) of glasses, where Tf estimated from differential scanning calorimetry measurements. We combined these complementary data sets to model structural exchange in the liquid state. The time scale of BO3–BO4 exchange from NMR data, τNMR, appears to be “decoupled” from that of the macroscopic shear relaxation process τs derived from the viscosity, however, at higher temperatures, τs approaches τNMR. The “decoupling” at lower temperature may be related to intermediate-range compositional heterogeneities, and/or fast modifier cation diffusivities which trigger “unsuccessful” network exchange events.  相似文献   

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