Vasileva Daria, Vasilev Semen, Kholkin Andrei L, Shur Vladimir Ya
School of Natural Sciences and Mathematics, Ural Federal University, Ekaterinburg 620000, Russia.
Department of Chemical Science, Bernal Institute, University of Limerick, V94 T9PX Limerick, Ireland.
Materials (Basel). 2019 Apr 15;12(8):1223. doi: 10.3390/ma12081223.
Piezoelectric materials based on lead zirconate titanate are widely used in sensors and actuators. However, their application is limited because of high processing temperature, brittleness, lack of conformal deposition and, more importantly, intrinsic incompatibility with biological environments. Recent studies on bioorganic piezoelectrics have demonstrated their potential in these applications, essentially due to using the same building blocks as those used by nature. In this work, we used piezoresponse force microscopy (PFM) to study the domain structures and polarization reversal in the smallest amino acid glycine, which recently attracted a lot of attention due to its strong shear piezoelectric activity. In this uniaxial ferroelectric, a diverse domain structure that includes both 180° and charged domain walls was observed, as well as domain wall kinks related to peculiar growth and crystallographic structure of this material. Local polarization switching was studied by applying a bias voltage to the PFM tip, and the possibility to control the resulting domain structure was demonstrated. This study has shown that the as-grown domain structure and changes in the electric field in glycine are qualitatively similar to those found in the uniaxial inorganic ferroelectrics.
基于锆钛酸铅的压电材料广泛应用于传感器和致动器。然而,由于其加工温度高、脆性大、缺乏保形沉积,更重要的是与生物环境存在内在不相容性,其应用受到限制。最近对生物有机压电材料的研究表明了它们在这些应用中的潜力,这主要是因为它们使用了与自然界相同的构建单元。在这项工作中,我们使用压电响应力显微镜(PFM)研究了最小的氨基酸甘氨酸中的畴结构和极化反转,由于其强烈的剪切压电活性,甘氨酸最近引起了很多关注。在这种单轴铁电体中,观察到了包括180°畴壁和带电畴壁在内的多种畴结构,以及与该材料特殊生长和晶体结构相关的畴壁扭结。通过向PFM探针施加偏置电压研究了局部极化切换,并证明了控制所得畴结构的可能性。这项研究表明,甘氨酸中生长的畴结构和电场变化与单轴无机铁电体中的定性相似。