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Ba4(Sm1-zBiz)9.333Ti18O54dielectric ceramics with high-permittivity, low loss under low frequency and ultra-fast discharge capability

  • Qiang He
  • , Jingkai Nie
  • , Xiaochuan Huang
  • , Yu Han
  • , Shaofeng Zhang
  • , Jian Zhou
  • , Zhen Xu
  • , Donghui Wang
  • , Ran Xu
  • State Grid Corporation of China
  • State Key Laboratory of Advanced Power Transmission Technology
  • Xi'an Jiaotong University
  • State Grid Beijing Haidian Electric Power Supply Company

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Ba6-3xSm8+2xTi18O54tungsten bronze ceramics are widely used as microwave dielectric materials; however, there is an increasing demand for low-frequency dielectric performance—such as high dielectric constant and ultra-low loss—in applications like capacitive voltage dividers. In this study, Bi-doped tungsten bronze ceramics Ba4(Sm1-zBiz)9.333Ti18O54(z = 0.3–0.45) exhibited remarkable dielectric performance, achieving a permittivity up to 119 and a loss tangent below 0.1 % at 1 kHz, along with excellent stability against temperature and electric field variations. Spectroscopic and microstructural analyses indicated that Bi3+substitution enhances lattice polarizability and induces local distortion, leading to increased dielectric constant while maintaining low loss and minimal nonlinearity. Impedance analysis demonstrated a single dominant conduction mechanism, with reduced activation energy at higher Bi content ascribed to microstructural evolution. Notably, Ba4(Sm0.55Bi0.45)9.333Ti18O54ceramics showed ultra-fast discharge capability, evidenced by a rapid current peak within 14 ns, which is attributed to dominant ionic displacement polarization. These findings highlight the potential of Bi-doped Ba4Sm9.333Ti18O54ceramics as promising candidates for reliable energy storage and high-voltage electronic applications at low frequencies.

Original languageEnglish
Pages (from-to)54966-54974
Number of pages9
JournalCeramics International
Volume51
Issue number27
DOIs
StatePublished - Nov 2025

Keywords

  • Dielectric ceramic
  • High dielectric permittivity
  • Tungsten bronze structure

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