Antiferroelectric PbSnO 3 Epitaxial Thin Films.
Yu-Hong LaiJun-Ding ZhengSi-Cheng LuYin-Kuo WangChun-Gang DuanPu YuYun-Zhe ZhengRong HuangLi ChangMing-Wen ChuJu-Hung HsuYing-Hao ChuPublished in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2022)
In condensed matter physics, oxide materials show various intriguing physical properties. Therefore, many efforts are made in this field to develop functional oxides. Due to the excellent potential for tin-based perovskite oxides, an expansion of new related functional compounds is crucial. This work uses a heteroepitaxial approach supported by theoretical calculation to stabilize PbSnO 3 thin films with different orientations. The analyses of X-ray diffraction and transmission electron microscopy unveil the structural information. A typical antiferroelectric feature with double hysteresis and butterfly loops is observed through electrical characterizations consistent with the theoretical prediction. The phase transition is monitored, and the transition temperatures are determined based on temperature-dependent structural and electrical characterizations. Furthermore, the microscopic antiferroelectric order is noticed under atomic resolution images via scanning transmission electron microscopy. This work offers a breakthrough in synthesizing epitaxial PbSnO 3 thin films and comprehensively understanding its anisotropic antiferroelectric behavior.
Keyphrases
- electron microscopy
- deep learning
- physical activity
- machine learning
- mental health
- room temperature
- convolutional neural network
- optical coherence tomography
- healthcare
- single molecule
- magnetic resonance imaging
- health information
- computed tomography
- oxide nanoparticles
- mass spectrometry
- high resolution
- ionic liquid