Mechanistic role of relaxor character in pressure-driven depolarization of lead-free BNT-based ferroelectrics
Abstract
Bi0.5Na0.5TiO3(BNT)-based ferroelectric ceramics have emerged as promising candidates for high-power generator applications. However, the fundamental relationship between structure and pressure-induced depolarization behavior remains unclear. In this work, we systematically investigate the phase structure, domain configuration, phase transition behavior, and pressure-induced depolarization of 0.96(0.96(Bi0.5Na0.5)(Ti0.995Mn0.005)O3–0.04BiAlO3)–0.04NaNbO3 (abbreviated as 4NN) and 0.96(0.96(Bi0.5Na0.5)(Ti0.995Mn0.005)O3–0.04BiAlO3)–0.04KNbO3 (abbreviated as 4KN) composition ceramics. Both 4KN and 4NN exhibit similar phase structures featuring nanodomain configurations. However, 4NN demonstrates stronger relaxor character, with a higher degree of nanoregional ordering compared to 4KN. Under hydrostatic pressure (0–450 MPa), 4NN shows greater variations in ΔPmax, ΔPr, ΔEc, and Ploss than 4KN, indicating a more significant pressure-induced depolarization effect. Analysis of E–P phase diagrams and phase transition dynamics reveals that the well-ordered nanoregions of 4NN suppress phase transition relaxation, facilitating the ferroelectric–relaxor transition, and enhancing the depolarization-driven charge release. These findings elucidate the critical factors and underlying mechanisms governing pressure-induced depolarization in BNT-based materials, providing valuable insights for the rational design of high-performance lead-free ceramics for high-power pulsed applications.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (5)
Ping Peng
State Key Laboratory of New Textile Materials and Advanced Processing School of Materials Science and Engineering, School of Materials Science and Engineering
Long Wu
Meng Xie
Hengchang Nie
Genshui Wang