Isolated‐Oxygen‐Vacancy Hardening in Lead‐Free Piezoelectrics
02 engineering and technology
0210 nano-technology
DOI:
10.1002/adma.202202558
Publication Date:
2022-05-20T11:44:44Z
AUTHORS (16)
ABSTRACT
AbstractDefect engineering is a well‐established approach to customize the functionalities of perovskite oxides. In demanding high‐power applications of piezoelectric materials, acceptor doping serves as the state‐of‐the‐art hardening approach, but inevitably deteriorates the electromechanical properties. Here, a new hardening effect associated with isolated oxygen vacancies for achieving well‐balanced performances is proposed. Guided by theoretical design, a well‐balanced performance of mechanical quality factor (Qm) and piezoelectric coefficient (d33) is achieved in lead‐free potassium sodium niobate ceramics, whereQmincreases by over 60% whiled33remains almost unchanged. By atomic‐scaleZ‐contrast imaging, hysteresis measurement, and quantitative piezoresponse force microscopy analysis, it is revealed that the improvedQmresults from the inhibition of both extrinsic and intrinsic losses while the unchangedd33is associated with the polarization contributions being retained. More encouragingly, the hardening effect shows exceptional stability with increasing vibration velocity, offering potential in material design for practical high‐power applications such as pharmaceutical extraction and ultrasonic osteotomes.
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