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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Automated AFM force curve analysis for determining elastic modulus of biomaterials and biological samples
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Automated AFM force curve analysis for determining elastic modulus of biomaterials and biological samples

机译:自动AFM力曲线分析,可确定生物材料和生物样品的弹性模量

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摘要

The analysis of atomic force microscopy (AFM) force data requires the selection of a contact point (CP) and is often time consuming and subjective due to influence from intermolecular forces and low signal-to-noise ratios (SNR). In this report, we present an automated algorithm for the selection of CPs in AFM force data and the evaluation of elastic moduli. We propose that CP may be algorithmically easier to detect by identifying a linear elastic indentation region of data (high SNR) rather than the contact point itself (low SNR). Utilizing Hertzian mechanics, the data are fitted for the CP. We first detail the algorithm and then evaluate it on sample polymeric and biological materials. As a demonstration of automation, 64 x 64 force maps were analyzed to yield spatially varying topographical and mechanical information of cells. Finally, we compared manually selected CPs to automatically identified CPs and demonstrated that our automated approach is both accurate (< 10 nm difference between manual and automatic) and precise for non-interacting polymeric materials. Our data show that the algorithm is useful for analysis of both biomaterials and biological samples.
机译:原子力显微镜(AFM)力数据的分析需要选择接触点(CP),并且由于受到分子间力和低信噪比(SNR)的影响,因此通常既费时又主观。在这份报告中,我们提出了一种自动算法,用于选择AFM力数据中的CP和评估弹性模量。我们提出,通过识别数据的线性弹性压痕区域(高SNR)而不是接触点本身(低SNR),CP在算法上可能更易于检测。利用赫兹力学,为CP拟合数据。我们首先详细介绍该算法,然后在样本聚合物和生物材料上对其进行评估。作为自动化的证明,对64 x 64力图进行了分析,以产生空间变化的细胞地形和机械信息。最后,我们将手动选择的CP与自动识别的CP进行了比较,证明了我们的自动化方法既准确(手动与自动之间的差异小于10 nm),又适用于非相互作用的聚合材料。我们的数据表明,该算法可用于分析生物材料和生物样品。

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