首页> 美国卫生研究院文献>Materials >Compositional Design of Dielectric Ferroelectric and Piezoelectric Properties of (K Na)NbO3 and (Ba Na)(Ti Nb)O3 Based Ceramics Prepared by Different Sintering Routes
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Compositional Design of Dielectric Ferroelectric and Piezoelectric Properties of (K Na)NbO3 and (Ba Na)(Ti Nb)O3 Based Ceramics Prepared by Different Sintering Routes

机译:不同烧结路线制备(KNa)NbO3和(BaNa)(TiNb)O3基陶瓷的介电铁电和压电性能的组成设计

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摘要

Lead free piezoelectric materials are being intensively investigated in order to substitute lead based ones, commonly used in many different applications. Among the most promising lead-free materials are those with modified NaNbO3, such as (K, Na)NbO3 (KNN) and (Ba, Na)(Ti, Nb)O3 (BTNN) families. From a ceramic processing point of view, high density single phase KNN and BTNN ceramics are very difficult to sinter due to the volatility of the alkaline elements, the narrow sintering temperature range and the anomalous grain growth. In this work, Spark Plasma Sintering (SPS) and high-energy ball milling (HEBM), following heat treatments (calcining and sintering), in oxidative (O2) atmosphere have been used to prepare single phase highly densified KNN (“pure” and Cu2+ or Li1+ doped), with theoretical densities ρth > 97% and BTNN ceramics (ρth ~ 90%), respectively. Using BTTN ceramics with a P4mm perovskite-like structure, we showed that by increasing the NaNbO3 content, the ferroelectric properties change from having a relaxor effect to an almost “normal” ferroelectric character, while the tetragonality and grain size increase and the shear piezoelectric coefficients (k15, g15 and d15) improve. For KNN ceramics, the results reveal that the values for remanent polarization as well as for most of the coercive field are quite similar among all compositions. These facts evidenced that Cu2+ may be incorporated into the A and/or B sites of the perovskite structure, having both hardening and softening effects.
机译:为了替代通常用于许多不同应用的基于铅的压电材料,正在对无铅压电材料进行深入研究。其中最有前途的无铅材料是具有修饰的NaNbO3的材料,例如(K,Na)NbO3(KNN)和(Ba,Na)(Ti,Nb)O3(BTNN)族。从陶瓷加工的角度来看,由于碱性元素的挥发性,狭窄的烧结温度范围和异常的晶粒生长,高密度单相KNN和BTNN陶瓷非常难以烧结。在这项工作中,采用火花等离子体烧结(SPS)和高能球磨(HEBM),在氧化(O2)气氛中进行热处理(煅烧和烧结)后,制备了单相高致密KNN(“纯” Cu 2 + 或Li 1 + 掺杂)的理论密度分别为ρth> 97%和BTNN陶瓷(ρth〜90%)。使用具有P4mm钙钛矿结构的BTTN陶瓷,我们发现通过增加NaNbO3的含量,铁电性能从具有弛豫效应转变为几乎“正常”的铁电特性,而四方性和晶粒尺寸增加,并且剪切压电系数(k15,g15和d15)改善。对于KNN陶瓷,结果表明,在所有成分之间,剩余极化值和大多数矫顽场的值都非常相似。这些事实证明,Cu 2 + 可以结合到钙钛矿结构的A和/或B位,具有硬化和软化作用。

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