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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >High-performance ZnTiNb2O8 microwave dielectric ceramics produced from ZnNb2O6-TiO2 nano powders
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High-performance ZnTiNb2O8 microwave dielectric ceramics produced from ZnNb2O6-TiO2 nano powders

机译:高性能ZnTinB2O8微波介质陶瓷由ZnNB2O6-TiO2纳米粉末制成

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摘要

Ixiolite-structured ZnTiNb2O8 (ZTN) ceramics were prepared by the simple but effective route of reaction sintering ZnNb2O6 and TiO2 nano powders. The effect of sintering temperature and soaking time on the densification behavior, microstructure evolution and microwave dielectric properties of the synthesized ZTN ceramics were systematically studied. Nano ZnNb2O6 and TiO2 raw materials were mixed, pressed and sintered directly into ceramic bodies without any calcination step involved. The sintered samples were characterized by Field-Emission Scanning Electron Microscopy (FESEM), X-ray Diffraction (XRD), and microwave dielectric measurements. Single-phase ZnTiNb2O8 ceramics with relative densities up to 97% theoretical density were achieved by sintering at 975-1075 degrees C. The ixiolite ZTN ceramics reaction sintered at 1050 degrees C for 3 h exhibited excellent microwave dielectric properties with a dielectric constant (epsilon(r)) = 35.5, quality factor (Q x f(0)) = 52,500 GHz and a temperature coefficient of resonant frequency (tau(f)) = -60 ppm/degrees C. These results demonstrate that high-performance ZTN microwave dielectric ceramics can be successfully produced by the simple and efficient reaction-sintering method. (c) 2020 Elsevier B.V. All rights reserved.
机译:通过简单但有效的反应烧结型ZnNB2O6和TiO2纳米粉末制备Ixiolite结构ZnTinB2O8(ZTN)陶瓷。系统地研究了烧结温度和浸泡时间对合成ZTN陶瓷的致密化行为,微观结构演化和微波介电性能的影响。将纳米ZnNB2O6和TiO 2的原料混合,压制并直接烧结到陶瓷体中而不涉及任何煅烧步骤。烧结样品的特征在于现场排放扫描电子显微镜(FESEM),X射线衍射(XRD)和微波介电测量。具有高达97%的相对密度的单相ZnTinB2O8陶瓷通过在975-1075℃下烧结实现了高达97%的理论密度。在1050℃下烧结3小时的IXiolite ZTN陶瓷反应具有优异的微波介电性能,具有介电常数(epsilon( R))= 35.5,质量因子(Q XF(0))= 52,500GHz和谐振频率的温度系数(TAU(F))= -60ppm /℃。这些结果表明高性能ZTN微波介质陶瓷可以通过简单高效的反应烧结方法成功生产。 (c)2020 Elsevier B.v.保留所有权利。

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