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Visualization of Au Nanoparticles Buried in a Polymer Matrix by Scanning Thermal Noise Microscopy

机译:通过扫描热噪声显微镜观察聚合物基质中埋藏的金纳米颗粒

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摘要

Several researchers have recently demonstrated visualization of subsurface features with a nanometer-scale resolution using various imaging schemes based on atomic force microscopy. Since all these subsurface imaging techniques require excitation of the oscillation of the cantilever and/or sample surface, it has been difficult to identify a key imaging mechanism. Here we demonstrate visualization of Au nanoparticles buried 300 nm into a polymer matrix by measurement of the thermal noise spectrum of a microcantilever with a tip in contact to the polymer surface. We show that the subsurface Au nanoparticles are detected as the variation in the contact stiffness and damping reflecting the viscoelastic properties of the polymer surface. The variation in the contact stiffness well agrees with the effective stiffness of a simple one-dimensional model, which is consistent with the fact that the maximum depth range of the technique is far beyond the extent of the contact stress field.
机译:几位研究人员最近使用基于原子力显微镜的各种成像方案,以纳米级分辨率展示了地下特征的可视化。由于所有这些地下成像技术都需要激发悬臂和/或样品表面的振荡,因此很难确定关键的成像机制。在这里,我们通过测量尖端与聚合物表面接触的微悬臂梁的热噪声谱,展示了埋在聚合物基质中300 Aunm的金纳米颗粒的可视化。我们表明,表面下的金纳米粒子被检测为接触刚度和阻尼的变化,反映了聚合物表面的粘弹性。接触刚度的变化与简单的一维模型的有效刚度非常吻合,这与该技术的最大深度范围远远超出接触应力场的范围这一事实是一致的。

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