材料科学
纳米尺度
磁滞
开尔文探针力显微镜
纳米技术
铁电性
表征(材料科学)
显微镜
压电
压电响应力显微镜
铁电聚合物
导电原子力显微镜
静电力显微镜
非接触原子力显微镜
光电子学
扫描探针显微镜
光学
原子力显微镜
外差(诗歌)
悬臂梁
扫描电容显微镜
极化(电化学)
凝聚态物理
物理
电介质
声学
复合材料
作者
Qibin Zeng,Qicheng Huang,Hongli Wang,Caiwen Li,Zhen Fan,Deyang Chen,Yuan Cheng,Kaiyang Zeng
出处
期刊:Elements
[Mineralogical Society of America]
日期:2021-10-07
卷期号:5 (11): 2100639-2100639
被引量:1
标识
DOI:10.1002/smtd.202100639
摘要
Perceiving nanoscale ferroelectric phenomena from real space is of great importance for elucidating underlying ferroelectric physics. During the past decades, nanoscale ferroelectric characterization has mainly relied on the Piezoresponse Force Microscopy (PFM), however, the fundamental limitations of PFM have made the nanoscale ferroelectric studies encounter significant bottlenecks. In this study, a high-resolution non-contact ferroelectric measurement, named Non-Contact Heterodyne Electrostrain Force Microscopy (NC-HEsFM), has been introduced firstly. It has been unambiguously demonstrated that NC-HEsFM can operate on multiple eigenmodes to perform ideal high-resolution ferroelectric domain mapping, standard ferroelectric hysteresis loop measurement and controllable domain manipulation. With using quartz tuning fork (QTF) sensor and heterodyne detection, NC-HEsFM shows an unprecedented capability in achieving real non-contact yet non-destructive ferroelectric characterization with negligible electrostatic force effect. It is believed that NC-HEsFM can be extensively used in various ferroelectric or piezoelectric studies with providing substantially improved characterization performance. Meanwhile, the QTF-based force detection makes NC-HEsFM highly compatible for high-vacuum and low-temperature environments, providing ideal conditions for achieving an ultra-high spatial resolution to investigate the most intrinsic ferroelectric phenomena.
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