Abstract: Microwave dielectric materials are of great importance for the advance of wireless communication technology. Temperature stability is one of the most important performance indicators of microwave devices, characterized by a near-zero temperature coefficient of resonant frequency (τf) which can reduce the drift of the resonant frequency. Pioneer scholars have conducted in-depth research on the temperature coefficient of resonant frequency by the design of the solid solution, composites, and mechanical stacking. In this paper, focused on the adjustment methods for the τf, the corresponding theories (oxygen octahedron tilt/distortion and bond valence theory) are introduced. The recent research progress on τf regulation is reviewed. Finally, the development direction and open topics of the research related to the temperature coefficient of resonant frequency near zero have been prospected.
通讯作者:
* 李纯纯,桂林理工大学材料科学与工程学院副研究员、硕士研究生导师。2014年西安交通大学电子科学与技术专业博士毕业,目前主要从事信息功能材料与器件、敏感元器件的研究工作。发表论文100余篇,包括Nature Materials、Phy-sical Review B、Journal of the European Ceramics Society等。lichunchun2003@126.com
陈德钦, 曹雪凤, 黎峰荣, 崔永葆, 李纯纯. 微波介质材料谐振频率温度系数调控的研究现状与展望[J]. 材料导报, 2023, 37(22): 22020176-13.
CHEN Deqin, CAO Xuefeng, LI Fengrong, CUI Yongbao, LI Chunchun. Research Situation and Prospect on Temperature Coefficient of Resonant Frequency of Microwave Dielectric Materials. Materials Reports, 2023, 37(22): 22020176-13.
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