Bochenek Dariusz, Niemiec Przemysław, Dercz Grzegorz
Faculty of Science and Technology, Institute of Materials Engineering, University of Silesia in Katowice, 75 Pułku Piechoty 1a, 41-500 Chorzów, Poland.
Materials (Basel). 2020 Apr 24;13(8):1996. doi: 10.3390/ma13081996.
This work shows the influence of admixture on the basic properties of the multicomponent PbZrTiO (PZT)-type ceramics. It presents the results of four compositions of PZT-type material with the general chemical formula, Pb((ZrTi)MnSbW)O, where, in the position, a donor admixture was introduced, i.e., samarium (Sm), gadolinium (Gd), dysprosium (Dy) or lanthanum (La). The compositions of the PZT-type ceramics were obtained through the classic ceramic method, as a result of the synthesis of simple oxides. The X-ray diffraction (XRD) pattern studies showed that the obtained multicomponent PZT materials have a tetragonal structure with a P4mm point group. The microstructure of the obtained compositions is characterized by a well crystallized grain, with clearly visible grain boundaries. The composition with the admixture of lanthanum has the highest uniformity of fine grain microstructure, which positively affects its final dielectric and piezoelectric properties. In the multicomponent PZT-type ceramic, materials utilize the mixed (acceptor and donor) doping of the main compound. This dopiong method has a positive effect on the set of the electrophysical parameters of ceramic materials. Donor dopants W (at positions B) and = Sm, Gd, Dy, and La (at positions A) increase the dielectric and piezoelectric properties, while the acceptor dopant Sb (at positions B) increases the time and temperature stability of the electrophysical parameters. In addition, the suitable selection of the set of admixtures improved the sinterability of the ceramic samples, as well as resulted in obtaining the required material with good piezoelectric parameters for the poling process. This research confirms that all ceramic compositions have a set of parameters suitable for applications in micromechatronics, for example, as actuators, piezoelectric transducers, and precision microswitches.
这项工作展示了外加剂对多组分锆钛酸铅(PZT)型陶瓷基本性能的影响。它呈现了四种具有通式Pb((ZrTi)MnSbW)O的PZT型材料的成分结果,其中在特定位置引入了施主外加剂,即钐(Sm)、钆(Gd)、镝(Dy)或镧(La)。PZT型陶瓷的成分是通过经典陶瓷方法,由简单氧化物合成而获得的。X射线衍射(XRD)图谱研究表明,所获得的多组分PZT材料具有四方结构,点群为P4mm。所获得成分的微观结构的特征是晶粒结晶良好,晶界清晰可见。含有镧外加剂的成分具有最均匀的细晶粒微观结构,这对其最终的介电和压电性能产生积极影响。在多组分PZT型陶瓷中,材料利用了主化合物的混合(受主和施主)掺杂。这种掺杂方法对陶瓷材料的一系列电物理参数有积极影响。施主掺杂剂W(在B位)和 = Sm、Gd、Dy以及La(在A位)提高了介电和压电性能,而受主掺杂剂Sb(在B位)提高了电物理参数的时间和温度稳定性。此外,外加剂组合的合适选择改善了陶瓷样品的烧结性,并且还使得能够获得用于极化过程的具有良好压电参数的所需材料。这项研究证实,所有陶瓷成分都具有一组适用于微机电一体化应用的参数,例如用作致动器、压电换能器和精密微动开关。