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Frequency dependence of antiferroelectricferroelectric phase transition of PLZST ceramic
Authors:Qingshan Zhu  Shiyu Zhao  Ran Xu  Yujun Feng  Zhuo Xu  Xiaoyong Wei
Affiliation:Electronic Materials Research Laboratory, Key Laboratory of the Ministry of Education, Xi'an Jiaotong University, Xi'an, Shaanxi, People's Republic of China
Abstract:Antiferroelectric (AFE) ceramics are promising for applications in high-power density capacitors, transducers, etc. The forward switching field urn:x-wiley:00027820:media:jace18239:jace18239-math-0002 and backward switching field urn:x-wiley:00027820:media:jace18239:jace18239-math-0003 are critical performance indicators for AFE ceramics, and the coupling between the structure transition and domain orientation makes them different from the coercive field urn:x-wiley:00027820:media:jace18239:jace18239-math-0004 of ferroelectric (FE). Moreover, in practical applications, AFE ceramics are often required to operate at varying frequencies. However, systematic studies regarding the frequency dependence of urn:x-wiley:00027820:media:jace18239:jace18239-math-0005 and urn:x-wiley:00027820:media:jace18239:jace18239-math-0006 are insufficient. In this work, urn:x-wiley:00027820:media:jace18239:jace18239-math-0007 (PLZST) AFE ceramic was fabricated, and two empirical formulas (urn:x-wiley:00027820:media:jace18239:jace18239-math-0008urn:x-wiley:00027820:media:jace18239:jace18239-math-0009urn:x-wiley:00027820:media:jace18239:jace18239-math-0010, urn:x-wiley:00027820:media:jace18239:jace18239-math-0011urn:x-wiley:00027820:media:jace18239:jace18239-math-0012urn:x-wiley:00027820:media:jace18239:jace18239-math-0013) were proposed to predict the frequency dependence of urn:x-wiley:00027820:media:jace18239:jace18239-math-0014 and urn:x-wiley:00027820:media:jace18239:jace18239-math-0015. The formulas are based on the electric field–induced phase transition characteristics of AFE and the Kolmogorov–Avrami–Ishibashi domain nucleation-switching model. Furthermore, the dynamic hysteresis loops of PLZST at various frequencies (1–1000 Hz) and temperatures (urn:x-wiley:00027820:media:jace18239:jace18239-math-0016urn:x-wiley:00027820:media:jace18239:jace18239-math-0017) were investigated. The results show that the electric field–induced phase transition of AFE ceramic is dominated by the coupling between the structural transition and domain orientation. The domain orientation hinders the structure transition, leading to an increase in urn:x-wiley:00027820:media:jace18239:jace18239-math-0018 and a decrease in urn:x-wiley:00027820:media:jace18239:jace18239-math-0019 as the frequency of applied electric field increases. Meanwhile, the domain growth process is affected by the structure of AFE, and the value of urn:x-wiley:00027820:media:jace18239:jace18239-math-0020(domain growth dimensionality) increases with the stability of the AFE structure. For comparison, urn:x-wiley:00027820:media:jace18239:jace18239-math-0021 (PLBZST) relaxor FE ceramic was fabricated. Due to the high mobility of the microdomain, the dynamic hysteresis loop of PLBZST ceramic exhibits excellent frequency stability. The charge–discharge experiment with an ultrahigh equivalent frequency (urn:x-wiley:00027820:media:jace18239:jace18239-math-0022urn:x-wiley:00027820:media:jace18239:jace18239-math-0023100 kHz) was performed to investigate the frequency stability of energy release of PLZST and PLBZST. The results may provide guidance for research pertaining to ceramic capacitors with high-power density and high-frequency stability.
Keywords:antiferroelectric ceramics  frequency  phase transition
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