The latest process and challenges of microwave dielectric ceramics based on pseudo phase diagrams
Современные процессы и проблемы микроволновой диэлектрической керамики на основе псевдофазовых диаграмм
2021-10-01
SCID: 54.1/vasfp4rw
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5G communicationdielectric lossintrinsic polarization mechanismsmicrowave dielectric ceramicspseudo phase diagrams
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Abstract (AI)
Abstract The explosive process of 5G communication evokes the urgent demand of miniaturized and integrated dielectric ceramics filter. It is a pressing need to advance the development of dielectric ceramics utilization of emerging technology to design new materials and understand the polarization mechanism. This review provides the summary of the study of microwave dielectric ceramics (MWDCs) sintered higher than 1000 from 2010 up to now, °C with the purpose of taking a broad and historical view of these ceramics and illustrating research directions. To date, researchers endeavor to explain the structure-property relationship of ceramics with multitude of approaches and design a new formula or strategy to obtain excellent microwave dielectric properties. There are variety of factors that impact the permittivity, dielectric loss, and temperature stability of dielectric materials, covering intrinsic and extrinsic factors. Many of these factors are often intertwined, which can complicate new dielectric material discovery and the mechanism investigation. Because of the various ceramics systems, pseudo phase diagram was used to classify the dielectric materials based on the composition. In this review, the ceramics were firstly divided into ternary systems, and then brief description of the experimental probes and complementary theoretical methods that have been used to discern the intrinsic polarization mechanisms and the origin of intrinsic loss was mentioned. Finally, some perspectives on the future outlook for high-temperature MWDCs were offered based on the synthesis method, characterization techniques, and significant theory developments.
Key Findings
1
Future development of high-temperature microwave dielectric ceramics depends on advances in synthesis, characterization, and theoretical understanding.
2
Permittivity, dielectric loss, and temperature stability are governed by intertwined intrinsic and extrinsic factors, complicating material discovery and mechanism interpretation.
3
Pseudo phase diagrams are used to classify microwave dielectric ceramics according to composition, initially organizing materials into ternary systems.
4
The review summarizes experimental probes and complementary theoretical methods for identifying intrinsic polarization mechanisms and the origins of intrinsic dielectric loss.
5
The review surveys microwave dielectric ceramics sintered above 1000 °C from 2010 onward, emphasizing their relevance to miniaturized and integrated 5G filters.
Research Object
microwave dielectric ceramics sintered above 1000 °C
Research Subject
their composition-based classification, structure–property relationships, polarization mechanisms, intrinsic dielectric loss, and microwave dielectric performance (permittivity, dielectric loss, and temperature stability)
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2021-10-01
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