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Fabrication of transparent lead-free KNN glass ceramics by incorporation method

机译:掺入法制备透明无铅KNN玻璃陶瓷

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摘要

The incorporation method was employed to produce potassium sodium niobate [KNN] (K0.5Na0.5NbO3) glass ceramics from the KNN-SiO2 system. This incorporation method combines a simple mixed-oxide technique for producing KNN powder and a conventional melt-quenching technique to form the resulting glass. KNN was calcined at 800°C and subsequently mixed with SiO2 in the KNN:SiO2 ratio of 75:25 (mol%). The successfully produced optically transparent glass was then subjected to a heat treatment schedule at temperatures ranging from 525°C -575°C for crystallization. All glass ceramics of more than 40% transmittance crystallized into KNN nanocrystals that were rectangular in shape and dispersed well throughout the glass matrix. The crystal size and crystallinity were found to increase with increasing heat treatment temperature, which in turn plays an important role in controlling the properties of the glass ceramics, including physical, optical, and dielectric properties. The transparency of the glass samples decreased with increasing crystal size. The maximum room temperature dielectric constant (εr) was as high as 474 at 10 kHz with an acceptable low loss (tanδ) around 0.02 at 10 kHz.
机译:采用掺入法从KNN-SiO2系统生产铌酸钾钠(KNN)(K0.5Na0.5NbO3)玻璃陶瓷。这种掺入方法结合了用于生产KNN粉末的简单混合氧化物技术和常规的熔融淬火技术以形成最终的玻璃。将KNN在800℃下煅烧,然后以75:25(mol%)的KNN:SiO 2比率与SiO 2混合。然后将成功生产的光学透明玻璃在525℃-575℃的温度范围内进行热处理以结晶。所有透射率大于40%的玻璃陶瓷均会结晶为矩形的KNN纳米晶体,并在整个玻璃基质中很好地分散。发现晶体尺寸和结晶度随热处理温度的升高而增加,这继而在控制玻璃陶瓷的性能(包括物理,光学和介电性能)中起重要作用。玻璃样品的透明度随着晶体尺寸的增加而降低。在10 kHz时,最大室温介电常数(εr)高达474,在10 kHz时,可接受的低损耗(tanδ)约为0.02。

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