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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Electrical fatigue behavior of NBT-BT-xKNN ferroelectrics: effect of ferroelectric phase transformations and oxygen vacancies
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Electrical fatigue behavior of NBT-BT-xKNN ferroelectrics: effect of ferroelectric phase transformations and oxygen vacancies

机译:NBT-BT-XKNN铁电器的电疲劳行为:铁电相变换和氧空位的影响

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摘要

NBT-BT-based lead-free relaxors have attracted significant attention due to their excellent ferroelectric properties. They undergo a phase transformation to a ferroelectric state with domains, which plays an important role in their exhibited fatigue behavior. In case of non-ergodic relaxors (e.g. NBT-6BT) and ferroelectric compositions (e.g. NBT-12BT) domain wall pinning by oxygen vacancies leads to severe fatigue, while in case of ergodic relaxors (e.g. NBT-6BT-3(K1/2Na1/2)NbO3) domain wall pinning is relatively less effective. The importance of domain switching and concentration of oxygen vacancies has been further emphasized by comparing fatigue under unipolar and bipolar conditions, performing fatigue on NBT-6BT-3(K1/2Na1/2)NbO3 under non-ergodic (5 degrees C) and ergodic conditions (40 degrees C), and intentionally altering point defects concentration in NBT-6BT through non-stoichiometry. Furthermore, it has been shown that permanent fatigue due to electrode delamination and a blocking surface layer may commence at high numbers of fatigue cycles, depending upon the amplitude of fatigue waveform. Finally, the results obtained in this study have been summarized using a schematic.
机译:基于NBT-BT的无铅松弛器由于其优异的铁电性能而引起了显着的关注。它们经历了一个具有域的铁电状态的相变,在其表现疲劳行为中起着重要作用。在非ergodic弛豫(例如NBT-6BT)和铁电组合物(例如NBT-12BT)畴壁通过氧空位钉扎导致严重的疲劳,而在ergodic松弛器(例如NBT-6BT-3(K1 / 2NA1)的情况下/ 2)NBO3)畴壁钉扎相对较低。通过比较单极和双极条件下的疲劳,在非遍历(5℃)和ergodic下对NBT-6BT-3(K1 / 2NA1 / 2)NBO3上的疲劳进行疲劳来进一步强调域切换和氧空位浓度的重要性。条件(40℃),并在非化学计量中有意地改变点缺损NBT-6BT的浓度。此外,已经表明,由于电极分层和阻断表面层引起的永久疲劳可以在高位疲劳循环中开始,这取决于疲劳波形的幅度。最后,已经使用示意图已经总结了本研究中获得的结果。

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