Abstract A major challenge with (K,Na)NbO 3 compositions is maintaining high piezoelectric figures of merit (FOM) in a wide range of temperatures and electric fields. A textured composition is demonstrated, K 0.48 Bi 0.02 Na 0.5 Nb 0.92 Sb 0.04 Zr 0.04 O 3 incorporating 3 wt.% NaNbO 3 templates, that exhibits a d 33 of 570 pC/N and k 31 of 0.4 at room temperature. Additionally, a high texture degree of ≈98% is achieved with the desired microstructural orientation. Electrical quality factor ( Q e = 1/tan δ) is effectively improved from 22 to 33 with 0.1 mol% MnO 2 doping. The strain response ( S max /E max ) is calculated to be 450 pm V −1 under 40 kV cm −1 , and P ‐ E and S ‐ E loops exhibited excellent fatigue resistance up to 10 6 cycles. To validate the practical relevance, the energy harvesting performance is explored under both on‐resonance and off‐resonance conditions using vibration velocity measurement and a cantilever type energy harvester, respectively. The maximum output power recorded is ≈50 µW with a volume power density of ≈2 µW mm −3 . The vibration velocity reached 0.26 m s −1 under a drive voltage of 30 V mm −1 at resonance. Through the combination of defect engineering (Mn doping) and microstructural engineering (texturing), the results confirm an excellent combination of electromechanical properties along with thermal stability and fatigue resistance in this material system.
Nanda et al. (2025) studied this question.