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Unveiling a giant electrocaloric effect at low electric fields through continuous phase transition design

  • Yunyao Huang
  • , Leiyang Zhang
  • , Pingji Ge
  • , Ruiyi Jing
  • , Wenjing Shi
  • , Chao Li
  • , Xiang Niu
  • , Vladimir Shur
  • , Haibo Zhang
  • , Shengguo Lu
  • , Yintang Yang
  • , Dawei Wang
  • , Xiaoqin Ke
  • , Li Jin
  • Xi'an Jiaotong University
  • Guangdong University of Technology
  • Ural Federal University
  • Huazhong University of Science and Technology
  • Xidian University
  • Harbin Institute of Technology

科研成果: 期刊稿件文章同行评审

19 引用 (Scopus)

摘要

The reported electrocaloric (EC) effect in ferroelectrics is poised for application in the next generation of solid-state refrigeration technology, exhibiting substantial developmental potential. This study introduces a novel and efficient EC effect strategy in (1–x)Pb(Lu1/2Nb1/2)O3-xPbTiO3 (PLN-xPT) ceramics for low electric-field-driven devices. Phase-field simulations provide fundamental insights into thermally induced continuous phase transitions, guiding subsequent experimental investigations. A comprehensive composition/temperature-driven phase evolution diagram is constructed, elucidating the sequential transformation from ferroelectric (FE) to antiferroelectric (AFE) and finally to paraelectric (PE) phases for x=0.10−0.18 components. Direct measurements of EC performance highlight x=0.16 as an outstanding performer, exhibiting remarkable properties, including an adiabatic temperature change (ΔT) of 3.03 ​K, EC strength (ΔT/ΔE) of 0.08 ​K ​cm kV−1, and a temperature span (Tspan) of 31 ​°C. The superior EC effect performance is attributed to the temperature-induced FE to AFE transition at low electric fields and diffusion phase transition behavior contributing to the wide Tspan. This work provides valuable insights into developing high-performance EC effect across broad temperature ranges through the strategic design of continuous phase transitions, offering a simplified and economical approach for advancing ecofriendly and efficient solid-state cooling technologies.

源语言英语
期刊论文编号100225
期刊Advanced Powder Materials
3
5
DOI
出版状态已出版 - 10月 2024

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