dielectric ceramic
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2022 ◽  
Vol 120 (1) ◽  
pp. 013502
Author(s):  
Weijia Luo ◽  
Xubin Wang ◽  
Shun Wang ◽  
Xueqian Wang ◽  
Zetan Liu ◽  
...  

Materials ◽  
2021 ◽  
Vol 14 (24) ◽  
pp. 7519
Author(s):  
Jau-Jr Lin ◽  
Cheng-I Lin ◽  
Tune-Hune Kao ◽  
Meng-Chi Huang

This paper describes a low-temperature metallization and laser trimming process for microwave dielectric ceramic filters. The ceramic was metalized by electroless copper plating at a temperature lower than those of conventional low-temperature co-fired ceramic (LTCC) and direct bond copper (DBC) methods. Compared with filters made via traditional silver paste sintering, the metal in the holes of the microwave dielectric filters is uniform, smooth, and does not cause clogging nor become detached. Further, the batches of fabricated filters do not require individual inspection, reducing energy, labor, cost, and time requirements. A microwave dielectric filter was then manufactured from the prepared ceramic using a laser trimming machine with a line width and position error within ±50 μm; this demonstrates a more accurately controlled line width than that offered by screen printing. After using HFSS software simulations for preliminary experiments, the microwave dielectric filter was tuned to a target Wi-Fi band of 5.15–5.33 GHz; the return loss was <−10 dB, and the insertion loss was >−3 dB. To implement the real-world process, the laser parameters were optimized. Laser trimming has a higher success rate than traditional manual trimming, and the microwave dielectric filter manufactured here verified the feasibility of this process.


Author(s):  
Pengcheng Zhang ◽  
Hao Li ◽  
Xiaoqing Chen ◽  
Quanzhang Wen ◽  
Canbing Li

Author(s):  
Houlin Hu ◽  
Yao Wang ◽  
Chaoyang Cai ◽  
Pengcheng Zhang ◽  
Xiaoqing Chen ◽  
...  

2021 ◽  
Vol 10 (4) ◽  
pp. 675-703
Author(s):  
Dongxu Li ◽  
Xiaojun Zeng ◽  
Zhipeng Li ◽  
Zong-Yang Shen ◽  
Hua Hao ◽  
...  

AbstractDielectric ceramic capacitors, with the advantages of high power density, fast charge-discharge capability, excellent fatigue endurance, and good high temperature stability, have been acknowledged to be promising candidates for solid-state pulse power systems. This review investigates the energy storage performances of linear dielectric, relaxor ferroelectric, and antiferroelectric from the viewpoint of chemical modification, macro/microstructural design, and electrical property optimization. Research progress of ceramic bulks and films for Pb-based and/or Pb-free systems is summarized. Finally, we propose the perspectives on the development of energy storage ceramics for pulse power capacitors in the future.


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