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使用原子力显微镜和静态力谱法提取粘弹性材料参数。

Extracting viscoelastic material parameters using an atomic force microscope and static force spectroscopy.

作者信息

Parvini Cameron H, Saadi M A S R, Solares Santiago D

机构信息

Department of Mechanical and Aerospace Engineering, The George Washington University School of Engineering and Applied Science, 800 22nd St. NW, Suite 3000, Washington, DC 20052, United States.

出版信息

Beilstein J Nanotechnol. 2020 Jun 16;11:922-937. doi: 10.3762/bjnano.11.77. eCollection 2020.

Abstract

Atomic force microscopy (AFM) techniques have provided and continue to provide increasingly important insights into surface morphology, mechanics, and other critical material characteristics at the nanoscale. One attractive implementation involves extracting meaningful material properties, which demands physically accurate models specifically designed for AFM experimentation and simulation. The AFM community has pursued the precise quantification and extraction of rate-dependent material properties, in particular, for a significant period of time, attempting to describe the standard viscoelastic response of materials. AFM static force spectroscopy (SFS) is one approach commonly used in pursuit of this goal. It is capable of acquiring rich temporal insight into the behavior of a sample. During AFM-SFS experiments the cantilever base approaches samples with a nearly constant velocity, which is manipulated to investigate different timescales of the mechanical response. This manuscript seeks to build upon our previous work and presents an approach to extracting useful linear viscoelastic information from AFM-SFS experiments. In addition, the basis for selecting and restricting the model parameters for fitting is discussed from the perspective of applying this technique on a practical level. This work begins with a guided discussion that develops a fit function from fundamental laws, continues with conditioning a raw SFS experimental dataset, and concludes with the fit and prediction of viscoelastic response parameters such as storage modulus, loss modulus, loss angle, and compliance. These steps constitute a complete guide to leveraging AFM-SFS data to estimate key material parameters, with a series of detailed insights into both the methodology and supporting analytical choices.

摘要

原子力显微镜(AFM)技术已经并将继续为纳米尺度下的表面形态、力学及其他关键材料特性提供越来越重要的见解。一种引人注目的应用是提取有意义的材料特性,这需要专门为AFM实验和模拟设计的物理精确模型。AFM领域长期以来一直致力于速率相关材料特性的精确量化和提取,特别是试图描述材料的标准粘弹性响应。AFM静态力谱(SFS)是实现这一目标常用的一种方法。它能够获取关于样品行为的丰富时间信息。在AFM-SFS实验中,悬臂梁基部以近乎恒定的速度接近样品,通过控制该速度来研究机械响应的不同时间尺度。本论文旨在基于我们之前的工作,提出一种从AFM-SFS实验中提取有用线性粘弹性信息的方法。此外,还从实际应用该技术的角度讨论了选择和限制拟合模型参数的依据。这项工作首先通过引导性讨论从基本定律推导出一个拟合函数,接着对原始SFS实验数据集进行预处理,最后对粘弹性响应参数如储能模量、损耗模量、损耗角和柔量进行拟合和预测。这些步骤构成了利用AFM-SFS数据估计关键材料参数的完整指南,并对方法和相关分析选择提供了一系列详细见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62f8/7308608/4a9a45f968c4/Beilstein_J_Nanotechnol-11-922-g002.jpg

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