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1.
The microstructures and the microwave dielectric properties of the x(Mg0.95Zn0.05)TiO3-(1 − x) Ca0.8Sm0.4/3TiO3 ceramic system were investigated. In order to achieve a temperature-stable material, we studied a method of combining a positive temperature coefficient material with a negative one. Ca0.8Sm0.4/3TiO3 has dielectric properties of dielectric constant εr ~ 120, Q × f value ~ 13,800 GHz and a large positive τf value ~ 400 ppm/°C. (Mg0.95Zn0.05)TiO3 possesses high dielectric constant (εr ~ 16.21), high quality factor (Q × f value ~ 210,000 at 9 GHz) and negative τf value (− 59 ppm/°C). Sintering at 1300 °C with x = 0.9, 0.9(Mg0.95Zn0.05Ti)O3 − 0.1 Ca0.8Sm0.4/3TiO3 has a dielectric constant (εr) of 22.7, a Q × f value of 124,000 GHz and a temperature coefficient of resonant frequency (τf) of − 6.3 ppm/°C.  相似文献   

2.
The microwave dielectric properties and the microstructures of the (1−x)MgTiO3-xCaTiO3 ceramic system were investigated. With partial replacement of Mg by Co, dielectric properties of the (1−x)(Mg0.95Co0.05)TiO3-xCaTiO3 ceramics can be promoted. The microwave dielectric properties are strongly correlated with the sintering temperature. At 1275°C, the 0.95(Mg0.95Co0.05)TiO3-0.05CaTiO3 ceramics possesses excellent microwave dielectric properties: a dielectric constant εr of 20.3, a Q×f value of 107 000 ( at 7 GHz) and a τf value of −22.8 ppm/°C. By appropriately adjusting the x value in the (1−x)(Mg0.95Co0.05)TiO3-xCaTiO3 ceramic system, zero τf value can be achieved. With x=0.07, a dielectric constant εγ of 21.6, a Q×f value of 92 000 (at 7 GHz) and a τf value of −1.8 ppm/°C was obtained for 0.93(Mg0.95Co0.05)TiO3-0.07CaTiO3 ceramics sintered at 1275°C for 4 h.  相似文献   

3.
(1 − x)Ba(Zn1/3Ta2/3)O3-xBaTi4O9 (0.1 ≤ x ≤ 0.85) composites are prepared by mixing 1150 °C-calcined BaTi4O9 with 1150 °C-calcined Ba(Zn1/3Ta2/3)O3 powders. The crystal structure, microwave dielectric properties and sinterabilites of the (1 − x)Ba(Zn1/3Ta2/3)O3-xBaTi4O9 ceramics have been investigated. X-ray diffraction patterns reveal that BaTi4O9, ordered and disordered Ba(Zn1/3Ta2/3)O3 phases exist independently over the whole compositional range. The sintering temperatures of (1 − x)Ba(Zn1/3Ta2/3)O3-xBaTi4O9 ceramics are about 1240 - 1320 °C and obviously lower than those of Ba(Zn1/3Ta2/3)O3 ceramics. The dielectric constants (?r) and the temperature coefficient of resonant frequency (τf) of (1 − x)Ba(Zn1/3Ta2/3)O3-xBaTi4O9 ceramics increase with the increase of BaTi4O9 content. Nevertheless, the bulk densities and the quality values (Q × f) of (1 − x)Ba(Zn1/3Ta2/3)O3-xBaTi4O9 ceramics increase with the increase of Ba(Zn1/3Ta2/3)O3 content. The results are attributed to the higher density and quality value of Ba(Zn1/3Ta2/3)O3 ceramics, the better grain growth, and the densification of sintered specimens added a small BaTi4O9 content. The (1 − x)Ba(Zn1/3Ta2/3)O3-xBaTi4O9 ceramic with x = 0.1 sintered at 1320 °C exhibits a ?r value of 31.5, a maximum Q × f value of 68500 GHz and a minimum τf value of 4.1 ppm/°C.  相似文献   

4.
Lead-free piezoelectric (Bi0.95Na0.75K0.20−xLix)0.5Ba0.05TiO3 ceramics have been prepared by conventional process for different lithium substitutions. The SEM images show that the ceramics are well sintered at 1428 K. Dielectric and ferroelectric measurements have been performed. With the increasing of lithium substitution, the Curie temperature of the (Bi0.95Na0.75K0.20−xLix)0.5Ba0.05TiO3 ceramics shifts from 570 K to 620 K, but the maximum value of the dielectric constant decreases from 6700 to 4700 correspondingly. A relatively larger remanent polarization of 36.8 μC/cm2 has been found in the x = 0.05 sample. The coercive field decreases as the lithium substitution amount increases. An optimized d33 = 194 × 10− 12 C/N and a relative dielectric constant εr = 1510 have been obtained in (Bi0.95Na0.75K0.15Li0.05)0.5Ba0.05TiO3.  相似文献   

5.
The microstructures and the microwave dielectric properties of the (1 − x)Mg4Nb2O9-xCaTiO3 ceramic system were investigated. In order to achieve a temperature-stable material, CaTiO3 (τf ∼ 800 ppm/°C) was chosen as a τf compensator and added to Mg4Nb2O9 (τf ∼ −70 ppm/°C) to form a two phase system. It was confirmed by the XRD and EDX analysis. By appropriately adjusting the x-value in the (1 − x)Mg4Nb2O9-xCaTiO3 ceramic system, near-zero τf value can be achieved. A new microwave dielectric material, 0.5Mg4Nb2O9-0.5CaTiO3 applicable in microwave devices is suggested and possesses the dielectric properties of a dielectric constant ?r ∼ 24.8, a Q × f value ∼82,000 GHz (measured at 9.1 GHz) and a τf value ∼−0.3 ppm/°C.  相似文献   

6.
(1 − x)Ca2/5Sm2/5TiO3-xLi1/2Nd1/2TiO3 (CSLNT) ceramic powder was prepared by a liquid mixing method using ethylenediaminetetraacetic acid (EDTA) as the chelating agent. TG, DTA, XRD and TEM characterized the precursors and derived oxide powders. When x = 0.3, perovskite CSLNT was synthesized at 1000 °C for 3 h in air. The CSLNT (x = 0.3) ceramics sintered at 1200 °C for 3 h show excellent microwave dielectric properties of ?r = 99, Qf = 6200 GHz and τf = 9 × 10−6 °C−1.  相似文献   

7.
The influence of Ca0.8Sr0.2TiO3 on the microstructures and microwave dielectric properties of Nd(Mg0.4Zn0.1Sn0.5)O3 ceramics were investigated by the conventional solid-state method. The X-ray diffraction peaks of (1 − x)Nd(Mg0.4Zn0.1Sn0.5)O3xCa0.8Sr0.2TiO3 ceramic system shifted to higher angles as x increased. The dielectric constant increased from 31.8 to 47.7, the quality factor (Q × f) decreased from 54,200 to 42,800 GHz, and the temperature coefficient of resonant frequency (τ f ) increased from −43 to +41 ppm/°C as x increased from 0.5 to 0.7 when (1 − x)Nd(Mg0.4Zn0.1Sn0.5)O3xCa0.8Sr0.2TiO3 ceramic system sintered at 1,600 °C for 4 h.  相似文献   

8.
The La1−xBix(Mg0.5Sn0.5)O3 ceramics were prepared by the conventional solid-state method with various sintering temperatures. The X-ray diffraction patterns of the La0.97Bi0.03(Mg0.5Sn0.5)O3 ceramics revealed no significant variation of phase with sintering temperatures. An apparent density of 6.50 g cm−3, a dielectric constant (?r) of 20.2, a quality factor (Q × f) of 58,100 GHz and a temperature coefficient of resonant frequency (τf) of −84.2 ppm °C−1 were obtained for La0.97Bi0.03(Mg0.5Sn0.5)O3 ceramics that were sintered at 1550 °C for 4 h.  相似文献   

9.
The structure, ferroelectric characteristics and piezoelectric properties of (Na0.5Bi0.5)1 − xBaxTiO3 (x = 0.04, 0.06, 0.10) ceramics prepared by conventional solid state method were investigated. The influences of poling condition and sintering temperature on the piezoelectric properties of the ceramics were examined. The piezoelectric properties of the ceramics highly depend on poling field and temperature, while no remarkable effect of poling time on the piezoelectric properties was found in the range of 5-25 min. Compared with (Na0.5Bi0.5)0.96Ba0.04TiO3 and (Na0.5Bi0.5)0.90Ba0.10TiO3, the piezoelectric properties of (Na0.5Bi0.5)0.94Ba0.06TiO3 are more sensitive to poling temperature due to the relatively low depolarization temperature. Moderate increase of sintering temperature improved the poling process and piezoelectric properties due to the development of microstructural densification and crystal structure. With respect to sintering behavior and piezoelectric properties, a sintering temperature range of 1130-1160 °C was ascertained for (Na0.5Bi0.5)0.90Ba0.10TiO3.  相似文献   

10.
The binary lead-free piezoelectric ceramics with the composition of (1 − x)Bi0.5Na0.5TiO3-xBi0.5K0.5TiO3 were synthesized by conventional mixed-oxide method. The phase structure transformed from rhombohedral to tetragonal phase in the range of 0.16 ≤ x ≤ 0.20. The grain sizes varied with increasing the Bi0.5K0.5TiO3 content. Electrical properties of ceramics are significantly influenced by the Bi0.5K0.5TiO3 content. Two phase transitions at Tt (the temperature at which the phase transition from rhombohedral to tetragonal occurs) and Tc (the Curie temperature) were observed in all the ceramics. Adding Bi0.5K0.5TiO3 content caused the variations of Tt and Tc. A diffuse character was proved by the linear fitting of the modified Curie-Weiss law. Besides, the ceramics with homogeneous microstructure and excellent electrical properties were obtained at x = 0.18 and sintered at 1170 °C. The piezoelectric constant d33, the electromechanical coupling factor Kp and the dielectric constant ?r reached 144 pC/N, 0.29 and 893, respectively. The dissipation factor tan δ was 0.037.  相似文献   

11.
The effects of ZnO addition on the microstructures and microwave dielectric properties of 0.8(Mg0.95Co0.05)TiO3–0.2Ca0.6La0.8/3TiO3 ceramics were investigated. ZnO was selected as liquid phase sintering aids to lower the sintering temperature of 0.8(Mg0.95Co0.05)TiO3–0.2Ca0.6La0.8/3TiO3 ceramics. With ZnO additives, the densification temperature of 0.8(Mg0.95Co0.05)TiO3–0.2Ca0.6La0.8/3TiO3 can be effectively reduced from 1450 to 1200–1325 °C. The crystalline phase exhibited no phase difference at low addition levels (0.25–2 wt.%). It is found that low-level doping of ZnO (0.25–2 wt.%) can significantly improve the density and dielectric properties of 0.8(Mg0.95Co0.05)TiO3–0.2Ca0.6La0.8/3TiO3 ceramics. The quality factors Q × f were strongly dependent upon the amount of additives. Q × f values of 36 000 and 13 000 GHz could be obtained at 1200–1325 °C with 1 and 2 wt.% ZnO additives, respectively. During all additives ranges, the relative dielectric constants were significantly different and ranged from 23.1 to 27.96. The temperature coefficient varies from 14.1–24.3 ppm/°C.  相似文献   

12.
Ba2(Zn0.5Ti0.5X)O6 compounds from the general ABO3 perovskite family were synthesized by the classical solid-state route for X = Nb and Ta with various A/B ratios (1.005, 1 and 0.995). After the calcination step at 1100 °C, both compounds (X = Nb and Ta) contain mainly the cubic disordered ‘Ba2(Zn0.5Ti0.5X)O6’ phase but traces of BaTiO3 and secondary phases are often detectable. Nevertheless, after the sintering stage at higher temperature (from 1300 to 1500 °C) and for all A/B ratios investigated, Ti enters into the cubic perovskite structure, resulting in the formation of a unique ‘Ba2(Zn0.5Ti0.5X)O6’ phase. Attractive dielectric properties have been measured on the tantalum-based compound for A/B = 0.995 (Q ∼2000 at 7.4 GHz and ? = 39.6) as well as on the niobium-based phase for A/B = 1.005 (Q ∼2200 at 6.1 GHz and ? = 54.8). All these characteristics were confirmed at 1 MHz and a linear dependence of the permittivity versus temperature from −60 to 180 °C has also been evidenced for both formulations. Sinterability, dielectric properties and microstructure of such compounds are discussed with respect to the stoichiometry.  相似文献   

13.
Lead-free piezoelectric ceramics, (Bi1/2Na1/2)1 − x(Bi1/2K1/2)xTiO3-0.03(Na0.5K0.5)NbO3 (x = 0.10-0.40) were synthesized by conventional solid-state sintering. A morphotropic phase boundary (MPB) between rhombohedral and tetragonal phases was confirmed. Two dielectric anomalies can be observed, showing diffused phase transition behavior. There is no shift of the dielectric maximum temperature with frequency due to the contribution of space charge at high temperatures, similar to pure (Bi1/2Na1/2)TiO3. The materials near MPB show a strong compositional dependence with the optimal properties of a d33 of 167 pC/N, a kp of 35.5%, a Pr of 27.6 μC/cm2 and a Ec of 27.9 kV/cm, suitable for future application.  相似文献   

14.
Phase formation, microstructure and microwave dielectric properties of (1 − y)Li3NbO4 + yLi2TiO3(Li2SnO3) ceramics have been studied in this paper. The structure and microstructure of the compounds were investigated using X-ray powder diffractometer (XRD), scanning electron microscope (SEM), Raman spectrometer. The microwave dielectric properties of the ceramics were studied with a network analyzer at the frequency of about 8–12 GHz. Li3NbO4 formed ordered solid solutions with the addition of small amount of Li2TiO3 (y ≤ 0.2), whereas no solid solution formed with the addition of small amount of Li2SnO3. Small amount of Li2TiO3 doping suppressed the appearance of impurity phases caused by lithium evaporation for Li3NbO4. The Li2TiO3 doped compositions with 0.02 ≤ y ≤ 0.08 demonstrated homogeneous and dense microstructure after sintering at 1150 °C/2 h, in contrast the 0.2 ≤ y ≤ 0.6 specimens exhibited porous and subgrains microstructure after sintering at 1250 °C/2 h. Short range ordering was observed in the 0.2 ≤ y ≤ 0.6 compositions. Mechanical mixture phases of Li3NbO4 and Li2SnO3 based solid solution (Li2SnO3 (ss)) existed in the Li2SnO3 added specimens. The dielectric permittivity increased with increasing Li2TiO3 addition, but decreased with the increase of Li2SnO3 content. All specimens exhibited negative τf value for the Li2TiO3 added specimens, although its absolute τf value decreased with the increase of Li2TiO3 addition. Whereas, the τf value changed from negative into positive with the increase of Li2SnO3 addition. Optimized combined microwave dielectric properties (?r = 19.8, Q × f = 91,200 GHz, τf = −24 ppm/°C and ?r = 16, Q × f = 75,300 GHz, τf = 3 ppm/°C) could be obtained for the Li2TiO3 added (y = 0.6) and Li2SnO3 added specimens(y = 0.7), respectively. The microwave dielectric properties of the Li2SnO3 end member are ?r = 13.5, Q × f = 61,600 GHz, τf = 29 ppm/°C.  相似文献   

15.
In this letter we report the effect of CuO and MnO2 additives on the sintering behavior of 0.95(Na0.5K0.5)NbO3-0.05BaTiO3 ceramics. It was found that the composition corresponding to 0.95(Na0.5K0.5)NbO3-0.05BaTiO3 + 2.0 mol% CuO + 0.5 mol% MnO2, sintered at 950 °C for 10 h, exhibited excellent piezoelectric properties corresponding to: kp = 0.41, d33 = 248 pC/N, Qm = 305, ε3T/ε0 = 1258, and Tc = 280 °C. These results indicate the prominence of this composition in lead-free systems.  相似文献   

16.
Spinel ferrite Cox(Cu0.5Zn0.5)1−xFe2O4 over a compositional range 0 < x < 1 was prepared using a simple hydrothermal method. Particle sizes could be varied from 14 to 25 nm by changing the x value. X-ray diffraction results confirmed that all the as-prepared nanoparticles revealed typical spinel structure and transmission electron microscopy images showed that the particle size of the samples increased with increasing x value. The magnetic properties of the as-prepared Cox(Cu0.5Zn0.5)1−xFe2O4 nanoparticles have been systematically examined. The maximum saturation magnetization existed at the highest Co content (x = 1). The electromagnetic properties of all the samples have been measured by an Agilent network analyzer and the results showed that Co0.1(Cu0.5Zn0.5)0.9Fe2O4 possessed the best microwave absorbing properties.  相似文献   

17.
T. Yu  K.W. Kwok  H.L.W. Chan 《Materials Letters》2007,61(10):2117-2120
(1 − x)Bi0.5Na0.5TiO3-xBi0.5K0.5TiO3 [BNT-BKT-100x] thin films have been successfully deposited on Pt/Ti/SiO2/Si substrates by a sol-gel process together with rapid thermal annealing. A morphotropic phase boundary (MPB) between Bi0.5Na0.5TiO3 and Bi0.5K0.5TiO3 was determined around x ∼ 0.15. Near the MPB, the film exhibits the largest grain size, the highest ε value (360) and the largest Pr value (13.8 μC/cm2). The BNT-BKT thin film system is expected to be a new and promising candidate for lead-free piezoelectric applications.  相似文献   

18.
Sintering behavior, microstructure and microwave dielectric properties of Li2+xTiO3 (0 ≤ x ≤ 0.2) ceramics have been studied by X-ray diffraction (XRD), scan electron microscopy (SEM), Raman spectra, dilatometery and microwave resonant measurement in this research. Homogeneous non-stoichiometric composition with rock salt structure existed for Li2+xTiO3 (0 ≤ x ≤ 0.2) ceramics. The sintering temperature was successfully reduced and highly densified sample could be obtained with appropriate excessive amount of lithium (x = 0.08). A transient reactive liquid phase sintering mechanism was proposed. The preferred orientation of grain growth and micro-cracks existed in the Li2TiO3 (x = 0) sample disappeared in the lithium excessive samples with x ≥ 0.08. The microwave dielectric properties varied significantly with the excessive amount of lithium. Optimized microwave dielectric properties were obtained for the x = 0.08 composition: ?r = 24.6, Q × f = 66,000 GHz, and τf = 22.1 ppm/°C.  相似文献   

19.
(5 − x)BaO-xMgO-2Nb2O5 (x = 0.5 and 1; 5MBN and 10MBN) microwave ceramics prepared using a reaction-sintering process were investigated. Without any calcinations involved, the mixture of BaCO3, MgO, and Nb2O5 was pressed and sintered directly. MBN ceramics were produced after 2-6 h of sintering at 1350-1500 °C. The formation of (BaMg)5Nb4O15 was a major phase in producing 5MBN ceramics, and the formation of Ba(Mg1/3Nb2/3)O3 was a major phase in producing 10MBN ceramics. As CuO (1 wt%) was added, the sintering temperature dropped by more than 150 °C. We produced 5MBN ceramics with these dielectric properties: ?r = 36.69, Qf = 20,097 GHz, and τf = 61.1 ppm/°C, and 10MBN ceramics with these dielectric properties: ?r = 39.2, Qf = 43,878 GHz, and τf = 37.6 ppm/°C. The reaction-sintering process is a simple and effective method for producing (5 − x)BaO-xMgO-2Nb2O5 ceramics for applications in microwave dielectric resonators.  相似文献   

20.
The microwave dielectric properties and the microstructures of the (1-x)MgTiO3-x(Ca0.8Sr0.2)TiO3 ceramic system prepared by the conventional solid-state route were investigated. (Ca0.8Sr0.2)TiO3 was employed as a τf compensator and was added to MgTiO3 to achieve a temperature-stable material. Ilmenite-structured MgTiO3 and perovskite-structured (Ca0.8Sr0.2)TiO3 were coexisted and the two-phase system was confirmed by the X-ray diffraction patterns and the energy-dispersive X-ray analysis. Although the εr of the specimen could be boosted by increasing amount of (Ca0.8Sr0.2)TiO3, it would instead render a decrease in the Q × f. The τf value is strongly correlated to the compositions and can be controlled through the existing phases. In fact, τf could be adjusted to a near-zero value by mixing 94 mole% MgTiO3 and 6 mole% (Ca0.8Sr0.2)TiO3. A dielectric constant (εr) of 21.42, a high Q × f value of 83,700 GHz (at 9 GHz) and a temperature coefficient of resonant frequency (τf) of − 1.8 ppm/°C were obtained for 0.94MgTiO3-0.06(Ca0.8Sr0.2)TiO3 sintered at 1300 °C for 4 h. It is proposed as a low-loss and low-cost dielectric material for microwave and millimeter wave applications.  相似文献   

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