Abstract

Rare-earth Sm3+-doped Pb(Mg1/3Nb2/3)O3–0.25PbTiO3 (PMN-0.25PT) ferroelectric ceramics with doping amounts between 0%–3% were developed via a conventional solid-state method. The doping effect of Sm3+ ions on the PMN-0.25PT matrix was systematically investigated on the basis of the phase structure, temperature-dependent dielectric, ferroelectric, and electrotechnical properties. Due to the disruption of long-range ferroelectric order, the addition of Sm3+ ions effectively lowers the Tm (temperature corresponding to maximum permittivity) of the samples, leading to enhanced relaxor ferroelectric (RFE) characteristic and superior electric field-induced strain (electrostrain) properties at room temperature. Intriguingly, a considerable large-signal equivalent piezoelectric coefficient d33* of 2376 pm/V and a very small hysteresis were attained in the PMN-0.25PT component doped with 2.5 mol.% Sm3+. The findings of piezoelectric force microscopy indicate that the addition of Sm3+ increases the local structural heterogeneity of the PMN-0.25PT matrix and that the enhanced electromechanical performance is due to the dynamic behavior of polar nanoregions. Importantly, strong temperature-dependent electrostrain and electrostrictive coefficient Q33 are observed in the critical region around Tm in all Sm3+-modified PMN-0.25PT ceramic samples studied. This work elucidates the phase transition behavior of Sm3+-doped PMN-0.25PT and reveals a critical region where electrostrictive properties can be greatly improved due to a strong temperature-dependent characteristic.

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