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1.
SiO2–B2O3 aerogels have been prepared by drying wet gels at a supercritical condition for ethanol in an autoclave. Aerogels have been nitrided for 6 h in flowing ammonia at the temperature of 1200 °C. It has been found that the amount of nitrogen incorporated in these aerogels always exceeds 20 wt%. This is a much higher value compared with the amount of nitrogen incorporated in a pure silica aerogel nitrided at the same conditions. The specific surface area of SiO2–B2O3 aerogels has been between 312 and 359 m2/g. After nitridation some shrinkage of aerogels has been observed and the surface area decreases about 20%. In FTIR spectra of SiO2–B2O3 aerogels a typical bands for SiO2 are observed. After nitridation a shift and broadening of 1100 cm?1 band to lower wavenumbers indicates that Si–N and B–N bonds are formed in nitrided aerogels.  相似文献   

2.
B. Kościelska  W. Jurga 《Journal of Non》2008,354(35-39):4345-4348
Studies in superconducting properties of NbN–SiO2 films are reported. The films were obtained through nitridation of sol–gel derived Nb2O5–SiO2 coatings at 1200 °C, a process leading to the formation of disordered structures with NbN metallic grains dispersed in the insulating SiO2 matrix. Electrical resistivity was measured with the conventional four-terminal method in the temperature range from 5 to 280 K. The samples’ superconducting properties, examined with magnetically modulated microwave absorption (MMMA), depend on the NbN/SiO2 molar ratio and the film’s thickness.  相似文献   

3.
40PbO–(10 ? x)PbF2–50 SiO2:xWO3 (where x = 1 to 7 mol%) glasses are prepared in the glass forming region. Spectroscopic studies (UV–Vis absorption, ESR, IR) are carried out for these glasses. Interesting changes are observed in the spectroscopic parameters of these glasses when the concentration of WO3 is changing in the glass matrix. Two absorption bands are observed around at 830 and 620 nm. ESR signal are measured at room temperature for these glasses, the strength of the signal is increased and hyperfine splitting is resolved with increasing the concentration of WO3 in the glass matrix. IR transmission gives valuable information about the nature of bonds in the glass matrix. The physical parameters along with spectroscopic parameters are measured.  相似文献   

4.
Amorphous nanoheterogeneities of the size less than 100 Å have been formed in glasses of the Li2O–Nb2O5–SiO2 (LNS) and Li2O–ZnO–Nb2O5–SiO2 (LZNS) systems at the initial stage of phase separation and examined by transmission electron microscopy, small-angle X-ray and neutron scattering. Both LNS and LZNS nanoheterogeneous glasses exhibit second harmonic generation (SHG) even when they are characterized by fully amorphous X-ray diffraction (XRD) patterns. Chemical differentiation and ordering of glass structure during heat treatments at appropriate temperatures higher Tg lead to drastic increase of SHG efficiency of LNS glasses contrary to LZNS ones in the frame of amorphous state of samples. Following heat treatments of nanostructured glasses result in crystallization of ferroelectric LiNbO3 and non-polar LiZnNbO4 in the LNS and LZNS glasses, respectively. Taking into account similar polarizability of atoms in LNS and LZNS glasses, the origin of the principal difference in the second-order optical non-linearity of amorphous LNS and LZNS samples is proposed to connect predominantly with the internal structure of formed nanoheterogeneities and with their polarity. Most probably, amorphous nanoheterogeneities in glasses may be characterized with crystal-like structure of polar (LiNbO3) phase initiating remarkable SHG efficiency or non-polar (LiZnNbO4) phase, which do not initiate SHG activity. It gives an opportunity to vary SHG efficiency of glasses in a wide rage without remarkable change of their transparency by chemical differentiation process at the initial stage of phase separation when growth of nanoheterogeneities is ‘frozen’. At higher temperatures, LiNbO3 crystals identified by XRD precipitate in LNS glasses initiating even more increase of SHG efficiency but visually observable transparency is impaired.  相似文献   

5.
The results of a structural study combining NMR and Raman spectroscopy of several melt-derived glasses in the system Na2O–MgO–CaO–P2O5–SiO2 are presented. The Raman spectra show clear changes in the Si–O–Si vibrational modes (related to the bridging oxygen atoms, BO) and also verify the presence of non-bridging oxygen atoms (NBO), also named terminal oxygens. The intensity of the Si–O–NBO stretching mode depends on the cation concentration. It can be concluded from the NMR studies that the MgO-containing samples have orthophosphate units charge-compensated by Ca2+ and Mg2+. The silicate matrix also contains both types of two-valent cations and consists of Q2 and Q1 units. Similarly, the Na2O-containing samples contain isolated orthophosphate units in a silicate matrix (Q2 and Q3 units), both charge-compensated by mixed cations Ca2+ and Na+. These experimental data were compared with theoretical parameters given by the Stevels model, which is a suitable tool for understanding bioactive behavior of these glasses. Furthermore, results of the in vitro tests carried out in simulated body fluids are presented and compared with both Raman and NMR structural data.  相似文献   

6.
This work presents the results of the structural analysis of xNbN–(100-x)SiO2 (x = 100, 80, 60 mol%) thin films by X-ray absorption spectroscopy (XAS). To prepare the films, thermal nitridation of sol–gel derived coatings have been performed. The resulting films have a granular structure with NbN grains distributed in the SiO2 matrix. The size of the grains depends on the NbN/SiO2 molar ratio. A detailed X-ray absorption fine structure (XAFS) data analysis shows that in all the samples both nitrogen and oxygen atoms are present as nearest neighbours of Nb. The intra-granular phase is an ordered NbN phase, whereas the shells around the grains are formed mainly by an oxide phase and, possibly, by other niobium nitride phases (probably with low nitrogen content). Two possible origins of the inter-granular oxide phase were considered: incomplete nitridation of Nb2O5 and addition of SiO2. Both of them are connected with the sample preparation method. The obtained XAS results allowed us to correlate the thickness and stoichiometry of the films under study with the electronic structure of the Nb ions and with the local geometric structure in their environment.  相似文献   

7.
Li Chen  Chunlei Yu  Dongbing He  Lili Hu  Wei Chen 《Journal of Non》2011,357(11-13):2286-2289
Transparent glass-ceramics were synthesized by heat-treatment of glass with a composition of 5La2O3–13.2MgO–28.8Al2O3–46SiO2–4.5TiO2–2.5ZrO2–0.15CoO (LMAS) (wt.%). The activation energy of crystallization and the Avrami parameter for the LMAS glass were determined from the DTA curves at different heating rates. The most two intense bands of Raman spectrum of initial glass at ~ 810 cm?1 and ~ 900 cm?1 were connected with the presence of [SiO4] and [TiO4] tetrahedral, respectively. After heat-treated at 700 °C/10 h+820 °C/8 h, the intensity of the band for [TiO4] tetrahedral weakened, while an intensive band at ~ 800 cm?1 for the Ti–O bond appeared. Other bands were characteristics of high-silicate network and x(MgTi2O5y(Al2TiO5) polycrystals. The changes reflected phase separation after heat-treatment of the initial glass. The strong absorption band of glass-ceramics centered at 580 nm can be assigned to 4A2(4F)→4T1(4P) and the broad absorption band at 1100–1700 nm to 4A2(4F)→4T1(4F) transitions of tetrahedral coordinated Co2+ ion. Two broad emission bands, one was around 660 nm, the other was from 800 nm to 1050 nm, of glass-ceramics correspond to the 4T1(4P)→4A2(4F) and 4T1(4P)→4T2(4F) transitions of tetrahedral coordinated Co2+ ions. The absorption and emission features clearly demonstrated that Co2+ ions were incorporated into nanocrystals and located in tetrahedral sites.  相似文献   

8.
Li Chen  Chunlei Yu  Lili Hu  Wei Chen 《Journal of Non》2011,357(19-20):3486-3489
Co2+-doped La2O3–MgO–Al2O3–SiO2 (LMAS) glass-ceramics was synthesized by conventional method. The microstructure of LMAS GCs heat-treated at 760 °C/12 h + 930 °C/4 h was characterized by X-ray diffraction (XRD) and transmission electron microscopy (TEM). The spectroscopic properties of Co2+-doped LMAS GCs were studied by absorption spectrum, excitation spectrum, and temperature dependent luminescence spectra. XRD results revealed the sizes of MgAl2O4 crystalline phases are about 9.1 ± 1.5 nm. The three peaks in the visible absorption band of LMAS GCs at 549 nm, 585 nm and 626 nm are connected with the transitions from 4A2 level to 2A1/2T2(2G), 4T1(4P) and 2E/2T1(2G) levels, respectively, and excitations into them emit the radiation at around 666 nm. The luminescence intensity increased with temperature increasing from 10 K to 150 K, while it weakened with temperature increasing from 150 K to 350 K. These features were explained by the effects of two competing mechanisms.  相似文献   

9.
A glass with the composition of 35Na2O–24Fe2O3–20B2O3–20SiO2–1ZnO (mol%) was melted, quenched, using a twin roller technique, and subsequently heat treated in the range 485–750 °C for 1–2 h. This led to the crystallization of magnetite as the sole or the major crystalline phase.Heat treatment at lower temperatures resulted in the crystallization of magnetite crystals 7–20 nm in diameter, whereas heat treatment at higher temperatures produced higher quantities of magnetite and much larger crystals. The room temperature magnetization and coercive force values were in the range of 6–57 emu g? 1 and 0–120 Oe, respectively for the heat treated glasses.  相似文献   

10.
The local order around ion-implanted Er3+ ions in SiO2–TiO2–HfO2 thin films prepared by sol–gel, was studied by extended X-ray absorption fine structure at the Er-LIII edge. Both the first and second coordination shells of Er3+ were analyzed for different heat-treatments. While the first coordination shell always consisted of ~6–7 oxygen atoms at distances varying between 2.23 and 2.27 Å, the structure of the second shell was found to vary with the film composition and heat-treatment. Namely, whereas Si was found to be the only second neighbor of erbium in binary SiO2–TiO2 films, the addition of HfO2 caused a preferential replacement of Si by Hf. The post-implantation thermal treatments also played a fundamental role in determining the final environment of the erbium ions.  相似文献   

11.
We prepared SiO2@Ag core–shell nanospheres: silver nanoparticles (~4 ± 2 nm in diameter) coated silica nanospheres (~50 ± 10 nm in diameter). The preparation route is a modification of the Stöber method, and involves the preparation of homogeneous silica spheres at room temperature, combined with the deposition of silver nanoparticles from Ag+ in solution, by using water/ethanol mixtures, tetraethyl-orthosilicate as Si source and silver nitrate as Ag source in a single-pot wet chemical route without an added coupling agent or surface modification, which leads to the formation of core@shell homogeneous nanospheres. We present the preparation and characterization of the SiO2@Ag core–shell nanospheres and also of bare silica spheres in the absence of silver, and propose a reaction mechanism for the formation of the core–shell structure.  相似文献   

12.
The structural role, coordination geometry and valence of Fe in a series of Fe2O3–PbO–SiO2–Na2O glasses are studied by means of Fe-K-NEXAFS and EXAFS spectroscopies. Parameters for the study are the concentration of the Fe and Pb-oxides, the SiO2/Na2O ratio and the cast temperature. The EXAFS and NEXAFS results reveal that the role of Fe3+ depends on the concentration of Fe2O3. More specifically, in most of the studied quaternary systems, the Fe3+ ion is a glass former, i.e. the Fe atoms belong to FeO4 tetrahedra that participate in the formation of the glassy network. The role of Fe as an intermediate oxide is identified only in one sample with 20 wt% Fe2O3, where ~80 at.% of the Fe atoms are tetrahedrally coordinated with O atoms, while the remaining ~20 at.% of the Fe atoms occupy octahedral sites. It is also revealed that the tetrahedral coordination of Fe in the vitreous matrix is destroyed when a number of parameters is altered, such as the Tcast, the (Fe + Si)/O and the SiO2/Na2O ratio.  相似文献   

13.
Glasses in the formulation close to BaSiO3–BaB2O4 eutectic compound are developed for sealing of intermediate-temperature (500–650 °C) solid oxide fuel cell (IT-SOFC). Thermal and microstructural analyses of the glasses with 0–10 mol% Al2O3 are also conducted. Detailed crystallization kinetics and interfacial stability of the glass in contact with yttria-stabilized zirconia (YSZ) and samaria-doped ceria (SDC) are investigated and compared. The results show that the formulation, 47BaO–21B2O3–27SiO2–5Al2O3 (G1A5), performs the best on glass forming ability (GFA) among all tested formulations, and shows matched thermal expansion and working temperature to CeO2-based electrolytes of IT-SOFC. Two major crystalline phases that precipitate from G1A5 above 750 °C are platy hexacelsian and BaSiO3 grains.  相似文献   

14.
X.L. Duan  Y.C. Wu  F.P. Yu  D.R. Yuan 《Journal of Non》2008,354(40-41):4695-4697
Transparent rare-earth Eu3+-doped ZnO–Ga2O3–SiO2 nano-glass-ceramics were obtained by a sol–gel method. X-ray diffraction and transmission electron microscopy were used to characterize the as-synthesized materials. Results showed that ZnGa2O4 nanocrystals with the size of 5 nm were precipitated from ZnO–Ga2O3–SiO2 system and dispersed in the SiO2-based glass when the heat-treatment temperature was up to 800 °C. Photoluminescence characterization of Eu3+-doped ZnO–Ga2O3–SiO2 nano-glass-ceramics was carried out and the results show that the as-synthesized material display intense emission at 615 nm belonging to 5D0  7F2 transition.  相似文献   

15.
SiO2–PbO–Bi2O3 glasses having the composition of 35SiO2xPbO–(65 ? x)Bi2O3 (where x = 5, 20 and 45; in mol%) have been prepared using the conventional melting and annealing method. Differential scanning calorimetry (DSC) was employed to characterize the thermal behavior of the prepared glasses in order to determine their crystallization temperatures (Tcr). It has been found that Tcr decreases with the decrease of Bi2O3 content. The amorphous nature of the prepared glasses as well as the crystallinity of the produced glass–ceramics were confirmed by X-ray powder diffraction (XRD) analysis. SiPbBi2O6 glass nano-composites, comprising bismuth oxides nano-crystallites, were obtained by controlled heat-treatment of the glasses at their (Tcr) for 10 h. Transmission electron microscopy (TEM) of the glass nano-crystal composites demonstrates the presence of cubic Bi2O3 nano-crystallites in the SiPbBi2O6 glass matrix. Nano-crystallites mean size has been determined from XRD line width analysis using Scherrer's equation as well as from TEM; and the sizes obtained from both analyses are in good agreement. These sizes varied from about 15 to 170 nm depending on the chemical compositions of parent glasses and, consequently, their structure. Interestingly, replacement of the Bi2O3 by PbO in the glass compositions has pronounced effect on the nature, morphology and size of the formed nano-crystallites. Decrease of the Bi2O3 content increases the size of the nano-crystallites, and at the lowest Bi2O3 extreme, namely 20 mol%, introduces minority of the monoclinic Bi2O4 in addition to the cubic Bi2O3. The crystallization mechanism is suggested to involve a diffusion controlled growth of the bismuth oxide nano-crystallites in the SiPbBi2O6 glass matrix with the zero nucleation rate.  相似文献   

16.
A molecular dynamics simulation method was used to study the effects of the microstructure on the solidification process of different cooling rates in the MgO–Al2O3–SiO2 glass–ceramics with cordierite as the main crystalline phase. The reasons for changes in the microstructure during the solidification process were analysed by the radial distribution function curve, the bond angular distribution, the coordination number and the volume changes. The results showed that the cooling rate greatly affected the crystallisation process and the glass transition process. When the cooling rate was too fast, the atoms could not undergo a massive displacement before they were “frozen”, and the ability of atoms to achieve an equilibrium position was limited. Some amorphous phases were formed as a result of the disorder of the atomic arrangement, then some crystalline phase precipitated from the vitreous, and a glass–ceramic material was eventually formed.  相似文献   

17.
The experiments were carried out on studying the effect of phase separation on nucleation and crystallization in the glass based on the system of CaO–MgO–Al2O3–SiO2–Na2O. In the experiments, TiO2 was chosen as nucleating agent. Three batches of 5, 8 and 10 wt% TiO2 substitution were investigated by the techniques of DSC, XRD, FTIR and FESEM equipped with EDS. XRD and FTIR analysis indicated that the super cooled glasses were all amorphous, the heat treatment leading to nucleation would cause a disruption of silica network which followed phase separation. The phase separation followed the generation of crystal seeds Mg(Ti, Al)2O6. FESEM observation and EDS analysis revealed that the more TiO2 content of glass, the more droplet separated phase and crystal seeds after nucleation heat treatment. The main crystal phase is clinopyroxene, Ca(Ti, Mg, Al)(Al, Si)O6, of crystallized glass.  相似文献   

18.
A macroporous nanoscale bulk bioactive glass (SiO2–CaO–P2O5 system) was prepared by sol–gel co-template method. Porosimeter analysis showed that the as-synthesized bioactive glasses (BGs) had a porosity of 85% and exhibited a multimodal pore size distribution, nanopores (10–40 nm) and macropores (100 nm–10 μm). Morphological and structural characterizations showed the pores were interconnected with pore walls of about 250 nm in width and 1 μm in length. In vitro bioactivity test indicated that the as-synthesized bulk BGs exhibited faster apatite layer formation capability than the conventional sol–gel BGs. Additionally, the deposited layer was identified as hydroxycarbonate apatite, which is similar to the inorganic part of human bone.  相似文献   

19.
The effect of the substitution of ZnO for TiO2 on the chemical durability of Bi2O3–SiO2–ZnO–B2O3 glass coatings in hot acidic medium (0.1 N H2SO4 at 80 °C) for different times was studied. The thick films produced by a screen-printing method and heat treated at 700 °C/5 min were analyzed by X-ray diffraction, scanning electron microscopy, and energy dispersive spectroscopy. The glass from the Bi2O3–SiO2–ZnO–B2O3 system developed Zn2SiO4 and a glassy phase that were readily attacked by hot 0.1 N sulfuric acid, whereas the heat treated coating from the Bi2O3–SiO2–TiO2–ZnO–B2O3 system presented a finer microstructure with thin interconnected Bi4Ti3O12 crystals and a glassy phase more resistant to hot 0.1 N sulfuric acid attack etching.  相似文献   

20.
B. Kościelska  A. Winiarski 《Journal of Non》2008,354(35-39):4349-4353
Sol–gel derived xNb2O5–(100 ? x)SiO2 films (where x = 100, 80, 60, 50, 40, 20, 0 mol%) were nitrided at various temperatures (800 °C, 900 °C, 1000 °C, 1100 °C and 1200 °C). The structural transformations occurring in the films as a result of ammonolysis were studied using X-ray diffraction (XRD), atomic force microscopy (AFM) and X-ray photoelectron spectroscopy (XPS). The XRD results have shown that the temperatures below 1100 °C were too low to obtain a pure NbN phase in the samples. The AFM observations indicate that the formation of the NbN phase and the size of NbN grains are related to the silica content in the layer. NbN grains become more regular and larger as the niobium content increases. The maximum grain size of about 100 nm was observed for x = 100. Preparation of the Nb2O5–SiO2 sol–gel derived layers and the subsequent nitridation is a promising method of inducing crystalline NbN in amorphous matrices. It follows from the XPS results that a small amount of Nb2O5 remains in the films after nitridation at 1200 °C and that nitrogen reacted not only with Nb2O5 but also with SiO2.  相似文献   

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