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High interfacial capacitance in LATP/LSCO/LATP ceramics prepared by film rolling

  • Xinrong Wu
  • , Jiahui Wang
  • , Yuxuan Hu
  • , Wen Li
  • , Xu Guo
  • , Xiaoyong Wei
  • Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

Abstract

The growing demand for advanced electronics requires high-performance capacitors featuring large capacitance, low leakage, excellent stability, and enhanced safety. Normally, the high capacitance in liquid based supercapacitor and/or electrolyte capacitor cannot be used in integrated electronics, while the co-fired multilayer ceramic capacitor has inferior specific capacity. As a combination of the above device structures, a stack of highly conductive ceramics (ionic or electronic) with a highly resistive interfacial layer formed in between, was demonstrated to realize ceramic-based supercapacitor. This study investigates a ceramic-based interfacial capacitor using Li1.3Al0.3Ti1.7(PO4)3 (LATP) as an ionic conductor (optimal ionic conductivity: 4.18 × 10−4 S/cm) and La0.9Sr0.1CoO3 (LSCO0.1) as an electronic conductor (conductivity: ∼10−1 to 101 S/cm). Utilizing compatible sintering temperatures, LATP/LSCO/LATP sandwich structures were fabricated via film rolling and consequent stacking, followed by co-firing. Interfacial reactions during firing form high-resistance interface layers that prevent the long-range migration of carriers. Consequently, LATP/LSCO/LATP sandwich structures exhibited a specific capacitance exceeding 0.1 μF/cm2 (<100 Hz) at room temperature. Compared to unitary LSCO, the total electronic conductivity of LATP/LSCO/LATP decreased by several orders of magnitude, confirming that the high specific capacitance primarily originates from the generated LATP/LSCO interfaces. This work presents a new strategy for developing interfacial ceramic capacitors and offers significant potential for fabricating advanced all-solid-state capacitive devices.

Original languageEnglish
Pages (from-to)8153-8161
Number of pages9
JournalCeramics International
Volume52
Issue number6
DOIs
StatePublished - Mar 2026

Keywords

  • Co-firing
  • Film rolling
  • Interfaces
  • LATP
  • LSCO

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