기본 정보
연구 분야
프로젝트
발행물
구성원
article|
gold
·인용수 14
·2025
Dielectric Properties of Composite PZT Films with Distinct Phase-Transition Temperatures via Aerosol Deposition
Ye-Ji Son, Seung‐Wook Kim, Hyo-Min Kim, Hyojung Kim, Baojin Chu, Dae‐Yong Jeong
IF 3.2Materials
초록

With the increasing demand for ceramic-based capacitors in energy storage and electronics, ferroelectrics have gained attention due to their high dielectric coefficient. However, near the phase-transition temperature, a significant variation in dielectric coefficient leads to reduced temperature stability and degradation of electrical properties, limiting their applications. To address this, composite films with multiple phase-transition temperatures can provide a stable dielectric response over a broad temperature range. Conventional ceramic processing cannot achieve this due to interdiffusion during high-temperature sintering. To overcome this, we utilized the aerosol deposition (AD) process, which enables the fabrication of high-density ceramic films at room temperature while preserving the distinct Curie temperatures (<i>T<sub>c</sub></i>) of different compositions. We prepared composite films with three PZT compositions: Pb(Zr<sub>0.2</sub>Ti<sub>0.8</sub>)O<sub>3</sub>, Pb(Zr<sub>0.52</sub>Ti<sub>0.48</sub>)O<sub>3</sub>, and Pb(Zr<sub>0.8</sub>Ti<sub>0.2</sub>)O<sub>3</sub>. Compared to single-phase Pb(Zr<sub>0.52</sub>Ti<sub>0.48</sub>)O<sub>3</sub>, the composite film exhibited a higher dielectric coefficient with reduced variation across a broad temperature range due to overlapping phase transitions. The AD-fabricated composite PZT films offer enhanced thermal stability, making them suitable for temperature-sensitive applications such as compact power electronics and portable devices.

키워드
Materials scienceDielectricCeramicComposite numberTemperature coefficientComposite materialAtmospheric temperature rangeCapacitorSinteringPhase transition
타입
article
IF / 인용수
3.2 / 14
게재 연도
2025