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March 12, 2026Applied Physics Letters1 citations

Millimeter-wave control of copper diffusion in BaTiO3 for ceramic capacitors

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TTTakashi TeranishiKUKanji UefujiSKS Kondo

Key Points

  • The aim is to control copper diffusion in barium titanate ceramics to improve dielectric properties for ceramic capacitors.
  • Used 24 GHz millimeter-wave irradiation to study copper diffusion in barium titanate ceramics.
  • Applied copper paste to pre-sintered dense barium titanate and heated conventionally or with MMW.
  • Analyzed the effects of MMW irradiation at temperatures between 950 and 1050 °C.
  • MMW irradiation significantly reduced copper diffusion compared to conventional heating.
  • Increased activation energy for diffusion from 282 to 340 kJ mol−1 with MMW.
  • Under conventional heating, oxygen-vacancy accumulation promoted long-range copper diffusion, while MMW reduced this effect.

Abstract

The use of copper (Cu) electrodes in multilayer ceramic capacitors (MLCCs) is highly attractive due to its low cost and electrical resistivity compared with nickel (Ni). However, Cu easily oxidizes and diffuses into BaTiO3 (BT) during high-temperature sintering, degrading dielectric properties and breakdown strength. In this study, 24 GHz millimeter-wave (MMW) irradiation was employed to investigate and control Cu diffusion in BT ceramics. Pre-sintered dense BT was coated with Cu paste and subsequently heated either conventionally (Conv.) or under MMW irradiation at 950–1050 °C. MMW irradiation significantly suppressed Cu diffusion into BT, increasing the activation energy for diffusion from 282 to 340 kJ mol−1. Under Conv. heating, oxygen-vacancy accumulation stabilizes mixed-valence Cu states in the CuO grain-boundary phase, promoting long-range Cu diffusion. In contrast, enhanced oxygen-vacancy mobility under MMW irradiation suppresses such defect-rich states, resulting in reduced Cu diffusion. These results demonstrate that MMW irradiation provides a nonthermal pathway to selectively control cation diffusion, offering a promising strategy for developing reliable Cu-based MLCCs.

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Cite This Study

Teranishi et al. (2026) studied this question.

synapsesocial.com/papers/69b2589696eeacc4fcec86achttps://doi.org/10.1063/5.0312900
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