Asylum Research, Santa Barbara, CA, USA.
Nanotechnology. 2011 Sep 2;22(35):355705. doi: 10.1088/0957-4484/22/35/355705. Epub 2011 Aug 8.
We report on a technique that simultaneously quantifies the contact stiffness and dissipation of an AFM cantilever in contact with a surface, which can ultimately be used for quantitative nanomechanical characterization of surfaces. The method is based on measuring the contact resonance frequency using dual AC resonance tracking (DART), where the amplitude and phase of the cantilever response are monitored at two frequencies on either side of the contact resonance. By modelling the tip-sample contact as a driven damped harmonic oscillator, the four measured quantities (two amplitudes and two phases) allow the four model parameters, namely, drive amplitude, drive phase, resonance frequency and quality factor, to be calculated. These mechanical parameters can in turn be used to make quantitative statements about localized sample properties. We apply the method to study the electromechanical coupling coefficients in ferroelectric materials and the storage and loss moduli in viscoelastic materials.
我们报告了一种技术,该技术可同时量化与表面接触的 AFM 悬臂梁的接触刚度和耗散,这最终可用于对表面进行定量纳米力学特性分析。该方法基于使用双交流共振跟踪(DART)测量接触共振频率,其中在接触共振的两侧的两个频率监测悬臂梁响应的幅度和相位。通过将针尖-样品接触建模为受迫阻尼谐振荡器,四个测量量(两个幅度和两个相位)允许计算四个模型参数,即驱动幅度、驱动相位、共振频率和品质因数。这些机械参数反过来又可用于对局部样品特性进行定量描述。我们应用该方法来研究铁电材料中的机电耦合系数以及粘弹性材料中的储能和损耗模量。