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Noncontact microrheology at acoustic frequencies using frequency-modulated atomic force microscopy

机译:调频原子力显微镜在声频下的非接触微流变学

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We report an atomic force microscopy (AFM) method for assessing elastic and viscous properties of soft samples at acoustic frequencies under non-contact conditions. The method can be used to measure material properties via frequency modulation and is based on hydrodynamics theory of thin gaps we developed here. A cantilever with an attached microsphere is forced to oscillate tens of nanometers above a sample. The elastic modulus and viscosity of the sample are estimated by measuring the frequency-dependence of the phase lag between the oscillating microsphere and the driving piezo at various heights above the sample. This method features an effective area of pyramidal tips used in contact AFM but with only piconewton applied forces. Using this method, we analyzed polyacrylamide gels of different stiffness and assessed graded mechanical properties of guinea pig tectorial membrane. The technique enables the study of microrheology of biological tissues that produce or detect sound.
机译:我们报告了一种原子力显微镜(AFM)方法,用于评估非接触条件下声频下软样品的弹性和粘性。该方法可用于通过调频来测量材料性能,并且基于我们在此处开发的细间隙的流体力学理论。具有连接的微球的悬臂被迫在样品上方振荡数十纳米。样品的弹性模量和粘度是通过测量样品上方不同高度处的振荡微球和驱动压电体之间的相位滞后的频率依赖性来估计的。这种方法的特点是有效面积的锥尖用于接触原子力显微镜,但仅施加皮可顿力。使用这种方法,我们分析了不同硬度的聚丙烯酰胺凝胶,并评估了豚鼠保护膜的分级机械性能。该技术可以研究产生或检测声音的生物组织的微流变学。

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