压电响应力显微镜
悬臂梁
材料科学
原子力声学显微镜
非接触原子力显微镜
极化(电化学)
刚度
扫描探针显微镜
振幅
显微镜
原子力显微镜
相(物质)
铁电性
压电
导电原子力显微镜
开尔文探针力显微镜
磁力显微镜
共振(粒子物理)
航程(航空)
执行机构
扫描电容显微镜
职位(财务)
扫描力显微镜
光电子学
光学
静电力显微镜
扫描隧道显微镜
跟踪(教育)
偏振显微镜
作者
Brian J Rodriguez,Clint Callahan,Sergei V Kalinin,Roger Proksch
出处
期刊:Nanotechnology
[IOP Publishing]
日期:2007-10-19
卷期号:18 (47): 475504-475504
被引量:488
标识
DOI:10.1088/0957-4484/18/47/475504
摘要
A dual-excitation method for resonant-frequency tracking in scanning probe microscopy based on amplitude detection is developed. This method allows the cantilever to be operated at or near resonance for techniques where standard phase locked loops are not possible. This includes techniques with non-acoustic driving where the phase of the driving force is frequency and/or position dependent. An example of the later is Piezoresponse Force Microscopy (PFM), where the resonant frequency of the cantilever is strongly dependent on the contact stiffness of the tip-surface junction and the local mechanical properties, but the spatial variability of the drive phase rules out the use of a phase locked loop. Combined with high-voltage switching and imaging, dual-frequency, resonance-tracking PFM allows reliable studies of electromechanical and elastic properties and polarization dynamics in a broad range of inorganic and biological systems, and is illustrated using lead zirconate-titanate, rat tail collagen, and native and switched ferroelectric domains in lithium niobate.
科研通智能强力驱动
Strongly Powered by AbleSci AI