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Hardening Effect in Lead-Free KNN-Based Piezoelectric Ceramics with CuO Doping.

Yunting ChengWenchou FanHao ChenLixu XieJie XingZhi TanJianguo Zhu
Published in: ACS applied materials & interfaces (2022)
As the most promising lead-free piezoelectric ceramics to replace lead zirconate titanate (PZT) ceramics, potassium sodium niobate (KNN) ceramics have been widely studied for their application prospects in various electronic devices. Increasing Q m while maintaining a high piezoelectric activity is quite important for piezoelectric ceramics applied in ultrasonic devices. A KNN-based ceramic with high d 33 and Q m is prepared by a conventional solid-state technique to construct polycrystalline phase boundaries and induce defect dipoles. The best overall performance can reach d 33 = 260 pC/N, Q m = 210, and T C = 293 °C. The temperature dependence of the relevant parameters is tested, where Q m increases but d 33 decreases with the rise of temperature accompanied by escaping ferroelectric boundary, which shows that the polarization rotation plays an important role in the two parameters. The hardening effect of KNN-based ceramics with CuO doping is further studied by first-principles calculations, demonstrating that the Cu doping strongly disturbs the ferroelectric order, but the formation of defect dipoles could stabilize the ferroelectric order. It is illustrated that defect dipoles always find their ground state at the site near the domain walls and the oriented defect dipoles hinder the polarization rotation severely, confirming the role of the defect dipoles in KNN-based materials.
Keyphrases
  • solid state
  • transition metal
  • density functional theory