Phase transitions and microwave dielectric behaviors of the (Bi1−xLi0.5xY0.5x)(V1−xMox)O4 ceramics

Author:

Pang Li‐Xia1,Zhou Di2ORCID,Yao Xiao‐Gang3,Lin Hui‐Xing3ORCID,Chen Chen4,Shi Zhong‐Qi5ORCID,Hussain Fayaz6,Darwish Moustafa Adel7,Zhou Tao8ORCID,Sun Shi‐Kuan9,Liang Qi‐Xin10,Chen Ya‐Wei10

Affiliation:

1. Micro‐optoelectronic Systems Laboratories Xi'an Technological University Xi'an Shaanxi China

2. Electronic Materials Research Laboratory Key Laboratory of the Ministry of Education & International Center for Dielectric Research School of Electronic Science and Engineering Xi'an Jiaotong University Xi'an Shaanxi China

3. Key Laboratory of Inorganic Functional Material and Device Shanghai Institute of Ceramics Chinese Academy of Sciences Shanghai China

4. School of Foreign Languages Taizhou University Taizhou China

5. State Key Laboratory for Mechanical Behaviour of Materials Xi'an Jiaotong University Xi'an China

6. Department of Materials Engineering NED University of Engineering & Technology Karachi Pakistan

7. Physics Department Faculty of Science Tanta University Tanta Egypt

8. School of Electronic and Information Engineering Hangzhou Dianzi University Hangzhou China

9. School of Material Science and Energy Engineering Foshan University Foshan Guangdong China

10. Shenzhen Microgate Technology Co., Ltd. Shenzhen Guangdong China

Abstract

AbstractMicrowave dielectric ceramics with intrinsic low sintering temperatures are potential candidates for low temperature co‐fired ceramics technology. In the present work, the (Li0.5Y0.5)MoO4 ceramic with tetragonal scheelite structures was selected to improve microwave dielectric properties of BiVO4 ceramics. As proved by X‐ray diffraction (XRD) results, scheelite structured solid‐solution ceramics were formed with x value ≤0.1 in the (Bi1−xLi0.5xY0.5x)(V1−xMox)O4. In situ XRD results further confirmed that the addition of (Li0.5Y0.5)MoO4 also lowered transition temperature from distorted monoclinic to tetragonal scheelite structure. When x value increased further, zircon phase was detected by XRD. Room and high‐temperature Raman spectra also supported the XRD results. Differences of thermal expansion coefficients of both monoclinic and tetragonal scheelite phases lead to an abnormality at phase transition temperature. Good microwave dielectric properties with permittivity above 70 and Qf (Q = quality factor = 1/dielectric loss and f = frequency) value above 8000 GHz were obtained in the (Bi1−xLi0.5xY0.5x)(V1−xMox)O4 solid‐solution ceramics with x value ≤0.1 sintered below 800°C. However, permittivity peak values at phase transition temperatures lead to large positive or negative temperature coefficient of resonant frequency, and this needs to be modified via composite technologies in the future.

Funder

National Natural Science Foundation of China

Society for Experimental Mechanics

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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