Base-Metal Electrode-Multilayer Ceramic Capacitors: Past, Present and Future Perspectives

Многослойные керамические конденсаторы с электродами из неблагородных металлов: прошлое, настоящее и перспективы будущего
Hiroshi Kishi, Youichi Mizuno, Hirokazu Chazono
2003-01-15

BaTiO3-based dielectricsNi-MLCCsbase-metal electrodesmultilayer ceramic capacitorsrare-earth ion doping
Multilayer ceramic capacitor (MLCC) production and sales figures are the highest among fine-ceramic products developed in the past 30 years. The total worldwide production and sales reached 550 billion pieces and 6 billion dollars, respectively in 2000. In the course of progress, the development of base-metal electrode (BME) technology played an important role in expanding the application area. In this review, the recent progress in MLCCs with BME nickel (Ni) electrodes is reviewed from the viewpoint of nonreducible dielectric materials. Using intermediate-ionic-size rare-earth ion (Dy 2 O 3 , Ho 2 O 3 , Er 2 O 3 , Y 2 O 3 ) doped BaTiO 3 ( A B O 3 )-based dielectrics, highly reliable Ni-MLCCs with a very thin layer below 2 µm in thickness have been developed. The effect of site occupancy of rare-earth ions in BaTiO 3 on the electrical properties and microstructure of nonreducible dielectrics is studied systematically. It appears that intermediate-ionic-size rare-earth ions occupy both A - and B -sites in the BaTiO 3 lattice and effectively control the donor/acceptor dopant ratio and microstructural evolution. The relationship between the electrical properties and the microstructure of Ni-MLCCs is also presented.
1
Base-metal electrode technology, particularly nickel electrodes, substantially expanded MLCC application areas and enabled continued development.
2
Intermediate-ionic-size rare-earth ions occupy both A- and B-sites in the BaTiO3 lattice, controlling donor/acceptor dopant balance and microstructural evolution.
3
MLCCs achieved worldwide production of 550 billion pieces and sales of $6 billion in 2000, demonstrating their dominant position among fine-ceramic products.
4
Rare-earth-doped BaTiO3 dielectrics using Dy2O3, Ho2O3, Er2O3, or Y2O3 enabled highly reliable Ni-MLCCs with dielectric layers thinner than 2 µm.
5
The electrical properties and reliability of Ni-MLCCs are closely related to dielectric microstructure and rare-earth ion site occupancy.

base-metal-electrode multilayer ceramic capacitors with nickel electrodes and rare-earth-doped BaTiO3-based nonreducible dielectrics

the effects of rare-earth-ion site occupancy on the electrical properties, microstructural evolution, reliability, and dielectric–microstructure relationship of Ni-MLCCs

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2003-01-15
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Hiroshi Kishi
Youichi Mizuno
Hirokazu Chazono
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