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1.
《Ceramics International》2022,48(24):36433-36440
Microwave dielectric ceramics with simple composition, a low permittivity (εr), high quality factor (Q × f) and temperature stability, specifically in the ultrawide temperature range, are vital for millimetre-wave communication. Hence, in this study, the improvements in sintering behavior and microwave dielectric properties of the SnO2 ceramic with a porous microstructure were investigated. The relative density of the Sn1-xTixO2 ceramic (65.1%) was improved to 98.8%, and the optimal sintering temperature of Sn1-xTixO2 ceramics reduced from 1525 °C to 1325 °C when Sn4+ was substituted with Ti4+. Furthermore, the εr of Sn1-xTixO2 (0 ≤ x ≤ 1.0) ceramics increased gradually with the rise in x, which can be ascribed to the increase in ionic polarisability and rattling effects of (Sn1-xTix)4+. The intrinsic dielectric loss was mainly controlled by rc (Sn/Ti–O), and the negative τf of the SnO2 ceramic was optimised to near zero (x = 0.1) by the Ti4+ substitution for Sn4+. This study also explored the ideal microwave dielectric properties (εr = 13.7, Q × f = 40,700 GHz at 9.9 GHz, and τf = ?7.2 ppm/°C) of the Sn0.9Ti0.1O2 ceramic. Its optimal sintering temperature was decreased to 950 °C when the sintering aids (ZnO–B2O3 glass and LiF) were introduced. The Sn0.9Ti0.1O2-5 wt% LiF ceramic also exhibited excellent microwave dielectric properties (εr = 12.8, Q × f = 23,000 GHz at 10.5 GHz, and τf = ?17.1 ppm/°C). At the ultrawide temperature range (?150 °C to +125 °C), the τε of the Sn0.9Ti0.1O2-5 wt% LiF ceramic was +13.3 ppm/°C, indicating excellent temperature stability. The good chemical compatibility of the Sn0.9Ti0.1O2-5 wt% LiF ceramic and the Ag electrode demonstrates their potential application for millimetre-wave communication.  相似文献   

2.
The crystal structure and microwave dielectric properties of a novel low‐firing compound Li2Mg2W2O9 were investigated in this study. The phase purity and crystal structure were investigated using X‐ray diffraction analyses and Rietveld refinement. The best microwave dielectric properties of the ceramic with a low permittivity (εr) ~11.5, a quality factor (× f) ~31 900 GHz (at 10.76 GHz) and a temperature coefficient of the resonant frequency (τf) ~ ?66.0 ppm/°C were obtained at the optimum sintering temperature (920°C). CaTiO3 was added into the Li2Mg2W2O9 ceramic to obtain a near zero τf, and 0.93Li2Mg2W2O9–0.07CaTiO3 ceramic exhibited improved microwave dielectric properties with a near‐zero τf ~ ?1.3 ppm/°C, a εr ~21.6, a high Qu × f value ~20 657 GHz. The low sintering temperature and favorable microwave dielectric properties make it a promising candidate for LTCC applications.  相似文献   

3.
Low-temperature-fired microwave ceramics are key to realizing the integration and miniaturization of microwave devices. In this study, a facile wet chemical method was applied to synthesize homogenous nano-sized CaF2 powders for simultaneously achieving low-temperature sintering and superior microwave dielectric properties. Pure CaF2 ceramics sintered at 950 °C for 6 h with good microwave dielectric properties (εr = 6.22, Q×f = 36,655 GHz, and τf = ?102 ppm/°C) was achieved. The microwave dielectric properties of the CaF2 ceramics were further improved by introducing LiF as a sintering aid. The sintering temperature of CaF2-based ceramics was effectively lowered from 950 °C to 750 °C with 10 wt% LiF doping, and excellent microwave dielectric properties (εr = 6.37, Q×f = 65,455 GHz, and τf = ?71 ppm/°C) were obtained.  相似文献   

4.
In this study, LiF was utilized to decrease sintering temperature, improve microstructure, enhance Q×f, and regulate τf of Li2Ti0.9(Zn1/3Ta2/3)0.1O3 (abbreviated as LTZT) ceramics. A complete solid solution together with a phase transition from monoclinic to cubic rock salt structure occurred. The cell volume of LTZT ceramics decreased as the LiF content increased. Relatively dense and uniform microstructures were observed for the ceramics as the LiF content was not less than 2 wt%. The dielectric constant of LTZT ceramics initially increased and then decreased with the increasing LiF content. The FWHM of the Raman band at about 808 cm?1 was closely related to the Q×f value. Notably, the samples with 3 wt% LiF exhibited the highest relative density of 97.4 % and satisfactory microwave dielectric properties of εr = 23.14 ± 0.16, Q×f = 110,090 ± 1100 GHz, and τf = +3.25 ± 1.45 ppm/°C when sintered at 950 °C. Good chemical compatibility with silver indicated the ceramic is a promising candidate in LTCC applications.  相似文献   

5.
Two novel low-εr gallates MGa2O4 (M = Ca, Sr) have been synthesized via a standard solid-state reaction method. According to the X-ray diffraction results, CaGa2O4 crystallizes in space group Pna21 with an orthorhombic symmetry, while SrGa2O4 belongs to the monoclinic P21/c system. Both ceramics show ever-improving microstructures with the increasing sintering temperature. The optimal microwave dielectric properties (εr = 9.2, Qf = 66,000 GHz, τf =–85 ppm/°C for SrGa2O4 and εr = 10.6, Qf = 15,400 GHz, τf =–58 ppm/°C for CaGa2O4) are obtained when sintered at 1275 °C. A patch antenna is fabricated using SrGa2O4 ceramics as the substrate, which realizes a return loss of –19.94 dB and total efficiency of –1.38 dB (72.8 % in power ratio) at 4.84 GHz. The exceptional performances indicate that SrGa2O4 ceramics are promising candidates for antenna applications at the Sub-6 GHz band.  相似文献   

6.
Sr1+xSm2Al2O7+x (0 ≤ x ≤ 0.05) ceramics were prepared by a conventional solid-state reaction method. Slight Sr2+ nonstoichiometry dramatically enhanced the microwave dielectric performance of the ceramics. Compared with the stoichiometric material, Sr-deficient ceramics show greatly enhanced microwave dielectric properties. For x = 0.03, the ceramics exhibited good microwave dielectric properties of εr = 18.31, Q × f = 78,000 GHz and τf = 2.28 ppm/°C. ZnO and LiF sintering aids were added to the ceramic to reduce the presintering temperature and enhance the microwave dielectric properties of the ceramics. After 0.25 wt% ZnO and 0.25 wt% LiF were added, the ceramics exhibited microwave dielectric properties of εr = 19.40, Q × f = 81,400 GHz and τf = 3.27 ppm/°C.  相似文献   

7.
Novel low temperature firing microwave dielectric ceramic LiCa3MgV3O12 (LCMV) with garnet structure was fabricated by the conventional solid‐state reaction method. The phase purity, microstructure, and microwave dielectric properties were investigated. The densification temperature for the LCMV ceramic is 900°C. LCMV ceramic possessed εr = 10.5, Qu × = 74 700 GHz, and τf = ?61 ppm/°C. Furthermore, 0.90LiCa3MgV3O12–0.10CaTiO3 ceramic sintered at 925°C for 4 h exhibited good properties of εr = 12.4, Qu × = 57 600 GHz, and τf = 2.7 ppm/°C. The LCMV ceramic could be compatible with Ag electrode, which makes it a promising ceramic for LTCC technology application.  相似文献   

8.
The 10 mol% ZnO–2 mol% B2O3–8 mol% P2O5–80 mol% TeO2 (ZBPT) glass was prepared by quenching as well as slowly cooling the melt. The ZBPT glass prepared by both methods show similar microwave dielectric properties. ZBPT glass has an εr of 22.5 (at 7 GHz), Qu × f of 1500 GHz, and τf of ?100 ppm/°C. The ceramic‐glass composites of Sr2ZnTeO6 (SZT) and ZBPT is prepared through two convenient methods: (a) conventional way of co‐firing the ceramic with ZBPT glass powder and (b) a nonconventional facile route by co‐firing the ceramic with precursor oxide mixture of ZBPT glass at 950°C. In the former route, SZT + 5 wt% ZBPT composite sintered at 950°C showed moderately good microwave dielectric properties (εr = 13.4, Qu × f = 4500 GHz and τf = ?52 ppm/°C). Although the SZT + 5 wt% ZBPT composite prepared through the nonconventional method also showed similar microwave dielectric properties (εr = 13.8, Qu × f = 5300 GHz and τf = ?50 ppm/°C), the synthesis procedure is much simplified in the latter case. The composites are found to be chemically compatible with Ag. The composite containing 5 wt% ZBPT prepared through conventional and nonconventional ways shows linear coefficients of thermal expansion of 7.0 ppm/°C and 7.1 ppm/°C, respectively. Both the composites have a room‐temperature thermal conductivity of 2.1 Wm?1 K?1.  相似文献   

9.
The dielectric properties of a Ga-based melilite type ceramic Sr2Ga2SiO7 via theoretical prediction based on far-infrared spectroscopy and experimental measurement by the Hakki–Coleman method were studied in this work. Dense and single-phase ceramics were fabricated via solid-state reaction at 1330°C and exhibited comprehensive microwave dielectric properties (εr ∼ 7.6, Q × f ∼ 23 600 GHz, and τf ∼ −35.2 ppm/°C) at 14.3 GHz. Chemical modifications were proposed to adjust the thermal stability and reduce the densification temperature. By adding 10 mol% CaTiO3, the negative τf can be compensated to a near-zero value of −3.8 ppm/°C. The densification temperature was reduced to 940°C by adding 3 wt.% LiF. A patch antenna was designed using Sr2Ga2SiO7 ceramic with a high radiation efficiency of 99.1% and a gain of 2.788 dBi at the center frequency of 4.371 GHz. All results indicate that the Sr2Ga2SiO7 ceramic has promising application potential for 5G wireless communication technology.  相似文献   

10.
A pure-phase Li4MgSn2O7 (L4MS) was successfully synthesized through optimizing the calcination condition. Microwave dielectric properties of the L4MS ceramic with the phase evolution were investigated together with its low-temperature sintering. The sample maintains a single L4MS phase as sintered below 1200?°C, such that τf remains a constant value of ~12.4?ppm/°C. Accompanied by the appearance of impurity phases (Li2SnO3)ss and especially (MgO)ss at higher sintering temperatures, excellent microwave dielectric properties of εr?=?13.1–13.5, Q?×?f?=?106,800–126,810?GHz and τf ?=?0–?4.2?ppm/°C are obtained in samples sintered at 1215–1260?°C for 4?h. Reduction of sintering temperature using LiF sintering aid also helps achieve pure-phase dense L4MS ceramic. The L4MS?+?x wt.% LiF ceramic exhibits εr~13.7, Qxf~97,000?GHz (x?≤?3) and τf ~8–13?ppm/°C sintered at 850?°C for potential LTCC applications, and εr ~13.9, Qxf~146,000?GHz and τf ~1.5–6?ppm/°C (x?≥?4) as sintered 1000?°C, exhibiting large potentials for microwave dielectric candidates.  相似文献   

11.
《Ceramics International》2021,47(4):4831-4837
The Ca3M2Si3O12 (M = Yb, Y) ceramics with orthorhombic silico-carnotite structure were fabricated via high-energy ball milling and solid-state reaction route. Dense Ca3Yb2Si3O12 and Ca3Y2Si3O12 ceramics sintered at 1260 °C and 1240 °C revealed promising microwave dielectric properties with εr = 9.2 and 8.7, Q×f = 56,400 GHz and 29,094 GHz, τf = −77.5 ppm/°C and −76.8 ppm/°C, respectively. The connection between crystal structure and Q×f values of Ca3M2Si3O12 (M = Yb, Y) ceramics was discussed with respect to the packing fraction, and their intrinsic microwave dielectric properties were examined using the infrared reflectivity spectra analysis. The thermal stability of Ca3Yb2Si3O12 was improved successfully by forming 0.91Ca3Yb2Si3O12‐0.09CaTiO3 composite ceramics with τf = +2.9 ppm/°C, εr = 12.93 and Q×f = 26,729 GHz.  相似文献   

12.
《Ceramics International》2017,43(10):7522-7530
Low-loss novel Li4Mg3Ti2O9 dielectric ceramics with rock-salt structure were prepared by a conventional solid-state route. The crystalline structure, chemical bond properties, infrared spectroscopy and microwave dielectric properties of the abovementioned system were initially investigated. It could be concluded from this work that the extrinsic factors such as sintering temperatures and grain sizes significantly affected the dielectric properties of Li4Mg3Ti2O9 at lower sintering temperatures, while the intrinsic factors like bond ionicity and lattice energy played a dominant role when the ceramics were densified at 1450 °C. In order to explore the origin of intrinsic characteristics, complex dielectric constants (ε and ε’’) were calculated by the infrared spectra, which indicated that the absorptions of phonon oscillation predominantly effected the polarization of the ceramics. The Li4Mg3Ti2O9 ceramics sintered at 1450 °C exhibited excellent properties of εr=15.97, Q·f=135,800 GHz and τf=−7.06 ppm/°C. In addition, certain amounts of lithium fluoride (LiF) were added to lower the sintering temperatures of matrix. The Li4Mg3Ti2O9−3 wt% LiF ceramics sintered at 900 °C possessed suitable dielectric properties of εr=15.17, Q·f =42,800 GHz and τf=−11.30 ppm/°C, which made such materials promising for low temperature co-fired ceramic applications (LTCC).  相似文献   

13.
A novel low-loss microwave dielectric material MgZrNb2O8 was reported for the first time. Single-phase MgZrNb2O8 was prepared by a conventional mixed-oxide route and sintered in the temperature range of 1280–1360 °C. The microstructure and microwave dielectric properties were investigated systematically. The X-ray diffraction results showed that all samples exhibit a single wolframite structure. When the sintering temperature was lower than 1340 °C, the Q×f value mainly depended on the relative density. However, when the sintering temperature was above 1340 °C, the Q×f value mainly relied on the grain morphology in addition to the density. The MgZrNb2O8 ceramic sintered at 1340 °C for 4 h exhibited excellent microwave dielectric of εr=26, Q×f=120,816 GHz (where f=6.85 GHz), and τf=?50.2 ppm/°C. These results demonstrate that MgZrNb2O8 could be a promising candidate material for the application of highly selective microwave ceramic resonators and filters.  相似文献   

14.
New dielectric ceramics are prepared by the conventional solid‐state ceramic route. Effects of LZB glass on sintering, phase purity, microstructure, and dielectric properties of Li2ZnTi3O8 ceramics have been investigated. Adding LZB lowers sintering temperature from 1050°C to 875°C, and does not induce much degradation of dielectric properties. The 1.0 wt% LZB glass‐added ceramic has better properties of εr = 23.9, Q × = 31,608 GHz, τf = ?14.3 ppm/°C. Additions of TiO2 markedly improve microwave properties. Typically, the Li2ZnTi3O8 + 1 wt%LZB + 3.5 wt%TiO2 sintered at 900°C shows εr = 26.1, Q × = 45,168 GHz, τf = ?4.1 ppm/°C. Compatibility with Ag electrode indicates that this material may be applied to LTCC devices.  相似文献   

15.
Microwave dielectric ceramic powder of 0.95(Mg0.95Zn0.05)TiO3-0.05CaTiO3 (MCT) has been prepared by solid-state reaction method through single-step calcination at 1150 °C. The green bodies prepared from the calcined powder have been sintered by conventional, susceptor-aided, and hybrid microwave sintering techniques followed by annealing. XRD of calcined and sintered ceramics show (Mg,Zn)TiO3 as a major phase with CaTiO3 as a minor secondary phase. Fractographs of fired ceramics obtained by SEM show similar features in conventional and hybrid microwave types of sintering. Microwave dielectric properties such as relative permittivity(εr), temperature coefficient of resonant frequency(τf), and unloaded quality factors (Qu) for conventional sintered at 1325 °C for 4 h are—εr~19.8, τf< –6 ppm/°C and Qu.f 69,600 GHz at 6 GHz. Ceramics obtained through susceptor-aided microwave sintering at 1325 °C for 4 h show poor fired density. But ceramics got by microwave-hybrid sintering (resistive + microwave) at the same temperature show εr~20.6, Qu.f~81,600 GHz at 6 GHz and τf~?6.9 ppm/°C. The effect of hybrid microwave sintering on the dielectric properties of MCT ceramics is found to be more subtle than microstructural.  相似文献   

16.
A series of microwave dielectric ceramics in the compositions of K2Mo2O7, K2Mo3O10, and K2Mo4O13 in K2O–MoO3 binary system with ultra low sintering temperatures were prepared using the solid‐state reaction method. Their synthesis, phase composition, compatibility with metal electrodes, microstructures, and microwave dielectric properties were investigated. The K2Mo2O7 ceramic sintered at 460°C with a triclinic structure has a relative permittivity of 7.5, a × f value of 22 000 GHz, and a τf value of ?63 ppm/°C. The X‐ray diffraction patterns indicate that K2Mo2O7 does not react with Ag and Al electrodes at the co‐fired temperatures. The K2Mo3O10 ceramic can be sintered well at 520°C with a relative permittivity of 5.6, a × f value of 35 830 GHz, and a τf value of ?92 ppm/°C. It has compatibility with Ag electrode. The K2Mo4O13 ceramic sintered at 540°C possesses good microwave dielectric properties with a relative permittivity of 6.8, a Q × f value of 39 290 GHz and a τf value of ?67 ppm/°C and it is compatible with Al electrode. For K2Mo2O7 and K2Mo4O13, it is found that the grain sizes and the number of grain boundaries play an important role in the dielectric loss. From this study, it can be seen that the three ceramics in K2O–MoO3 system have good microwave dielectric properties, ultra‐low sintering temperatures, non‐toxic, and low‐cost characteristics. So they can be potentially applied to ultra‐LTCC devices.  相似文献   

17.
0.9(Mg0.95Zn0.05)2(Ti0.8Sn0.2)O4–0.1(Ca0.8Sr0.2)TiO3 (MZTS–CST) ceramics were prepared by a conventional solid‐state route. The MZTS–CST ceramics sintered at 1325°C exhibited εr = 18.2, Q × f = 49 120 GHz (at 8.1 GHz), and τf = 15 ppm/°C. The effects of LiF–Fe2O3–V2O5 (LFV) addition on the sinterability, phase composition, microstructure, and microwave dielectric properties of MZTS–CST were investigated. Eutectic liquid phases 0.12CaF2/0.28MgF2/0.6LiF and MgV2O6 were developed, which lowered the sintering temperature of MZTS–CST ceramics from 1325°C to 950°C. X‐ray powder diffraction (XRPD) and energy dispersive spectroscopy (EDS) analysis revealed that MZTS and CST coexisted in the sintered ceramics. Secondary phase Ca5Mg4(VO4)6 as well as residual liquid phase affected the microwave dielectric properties of MZTS–CST composite ceramics. Typically, the MZTS–CST–5.3LFV composite ceramics sintered at 950°C showed excellent microwave dielectric properties: εr = 16.3, Q × f = 30 790 GHz (at 8.3 GHz), and τf = ?10 ppm/°C.  相似文献   

18.
《Ceramics International》2016,42(9):11003-11009
A low temperature sintering method was used to avoid the relatively high sintering temperatures typically required to prepare 0.67CaTiO3–0.33LaAlO3 (CTLA) ceramics. Additionally, CeO2 was introduced into the CTLA ceramics as an oxygen-storage material to improve their microwave dielectric properties. 0.67CaTiO3–0.33LaAlO3 ceramics co-doped with B2O3–Li2O–Al2O3 and CeO2 were prepared by a conventional two-step solid-state reaction process. The sintering behavior, crystal structure, surface morphology, and microwave dielectric proprieties of the prepared ceramic samples were studied, and the reaction mechanism of CeO2 was elucidated. CTLA+0.05 wt% BLA+3 wt% CeO2 ceramics sintered at 1360 °C for 4 h exhibited the optimal microwave dielectric properties: dielectric constant (εr)=45.02, quality factor (Q×f)=43102 GHz, and temperature coefficient of resonant frequency (τf)=2.1 ppm/°C. The successful preparation of high-performance microwave dielectric ceramics provides a direction for the future development and commercialization of CTLA ceramics.  相似文献   

19.
In this study, Zn2+-substituted Li2MgSiO4 ceramics (Li2(Mg1-xZnx)SiO4, x = 0.00, 0.05, 0.10, 0.15, and 0.20) were synthesized using a traditional solid-state method. A fixed amount of LiF sintering aid (1.5 wt%) was added to the ceramics for decreasing the sintering temperature and adjusting their microwave dielectric properties. X-ray diffraction (XRD) results revealed no secondary phases, and scanning electron microscopy (SEM) data suggest that the Zn2+ ion substitution increased the size and uniformity of the grains, thereby affecting the densification of the prepared ceramics. The maximum bulk density (2.94 g/cm3) was found in a Zn2+ ion-substituted ceramic with x = 0.10 at a relative density of 94.2% (compared with the XRD theoretical density). Excellent microwave dielectric properties (εr = 6.28, Q × f = 50400 GHz, and τf = ?145 ppm/°C) can also be obtained at this zirconium content. We believe that the developed ceramics are promising for use as antenna substrates or transmit/receive modules in low-temperature co-firing ceramic applications.  相似文献   

20.
《Ceramics International》2023,49(16):27147-27153
Novel walstromite-type MCa2Si3O9 (M = Ba, Sr) ceramics, with triclinic space group P-1, were prepared through a solid-state reaction method. The P–V-L theory proves that the lattice energy and bond energy of the Si–O bond play a leading role in the quality factor and the dielectric constant is mainly determined by the ionic polarization. Excellent microwave dielectric properties of BaCa2Si3O9 and SrCa2Si3O9 ceramics could be obtained: εr = 8.99 ± 0.23, Q × f = 44,542 ± 500 GHz, and τf = −25.9 ± 3.0 ppm/°C and εr = 7.39 ± 0.23, Q × f = 48,772 ± 500 GHz, and τf = −27.5 ± 3.0 ppm/°C, when sintered at 1240/1280 °C for 4 h. Then SrCa2Si3O9 ceramic is applied to a new microstrip bandpass filter, because of its high microwave dielectric properties and low thermal expansion coefficient. With reduced dimension, the filtering performance of the circuit is also highly improved, including reduced capacitor parasitic effect and the optimized stopband insertion loss. Accordingly, the SrCa2Si3O9 ceramic is a promising candidate for sub-6 GHz a filter of microstrip bandpass applications.  相似文献   

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