将原子力显微镜推向极限:刚性体附近的相间机械性能测量

IF 5.1 1区 化学 Q1 POLYMER SCIENCE
Io Saito, Richard J. Sheridan, Stefan Zauscher, L. Catherine Brinson
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引用次数: 0

摘要

了解聚合物纳米复合材料的机械性能对工业应用至关重要。特别是,测定纳米填料-聚合物相间的聚合物模量对于优化界面机械性能非常重要。通过原子力显微镜(AFM)进行的纳米压痕法以纳米级的空间分辨率测量了相间区域的模量。然而,对异质材料的压痕会产生一个通常被称为 "基底效应 "的令人困惑的问题,即由刚性体引起的结构应力场与相间区域的实际模量相混淆。虽然基于有限元分析(FEA)的方法可用于从测量的表观模量-距离剖面解卷相间模量,但仍需要对该方法进行实验验证。在此,我们使用原子力显微镜纳米压痕法对分层模型复合材料进行了验证,该模型由三层不同模量的材料组成,以再现真实聚合物纳米复合材料中基体、填料和相间的特性。通过系统地改变 "人工 "相间层的厚度和原子力显微镜探针的半径,我们获得了各种压痕条件下的模量-距离曲线。我们利用从有限元分析中获得的经验主曲线验证了一种消除基底效应的方法。此外,我们还表明,只有当相间层与探针接触半径相比足够厚时,才能区分人工相间层对模量-距离曲线的影响。最后,我们建立了一个创新的定量框架,通过机械纳米压痕测量预测相间层厚度,并讨论了确定相间层厚度的实用下限。总之,我们提供了一种广泛适用的方法来提取多相软材料的相间机械特性,以及选择最佳表征条件的实用指南。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Pushing AFM to the Boundaries: Interphase Mechanical Property Measurements near a Rigid Body

Pushing AFM to the Boundaries: Interphase Mechanical Property Measurements near a Rigid Body
Understanding the mechanical properties of polymer nanocomposite materials is essential for industrial use. Particularly, the determination of the polymer modulus at the nanofiller–polymer interphase is important for optimizing the interfacial mechanical properties. Nanoindentation via Atomic Force Microscopy (AFM) is well-established for measuring the modulus of the interphase region with nanoscale spatial resolution. However, indentation into heterogeneous materials presents a confounding issue often referred to as the “substrate effect”, i.e., the structural stress field caused by the rigid body is convoluted with the actual modulus of the interphase region. While finite element analysis (FEA)-based methods can be used to deconvolute the interphase modulus from measured apparent modulus–distance profiles, the experimental validation of this method is still needed. Here, we provide this validation using AFM nanoindentation on a layered model composite that consists of three layers with different moduli to recapitulate the properties of the matrix, the filler, and the interphase of real polymer nanocomposites. By systematically varying the thickness of the “artificial” interphase layer and the AFM probe radius, we obtain modulus–distance profiles over a wide range of indentation conditions. We validate a method to deconvolute the substrate effect using an empirically derived master curve obtained from FEA analysis. Furthermore, we showed that the effect of the artificial interphase on modulus– distance profiles can be distinguished only if the interphase layer is thick enough compared to the contact radius of the probe. Finally, we established an innovative and quantitative framework to predict the interphase thickness from mechanical nanoindentation measurements and discussed the lower, practical limit for interphase thickness determination. In summary, we provide a broadly applicable method to extract interphase mechanical properties of multiphase soft materials and practical guidelines for choosing optimal characterization conditions.
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来源期刊
Macromolecules
Macromolecules 工程技术-高分子科学
CiteScore
9.30
自引率
16.40%
发文量
942
审稿时长
2 months
期刊介绍: Macromolecules publishes original, fundamental, and impactful research on all aspects of polymer science. Topics of interest include synthesis (e.g., controlled polymerizations, polymerization catalysis, post polymerization modification, new monomer structures and polymer architectures, and polymerization mechanisms/kinetics analysis); phase behavior, thermodynamics, dynamic, and ordering/disordering phenomena (e.g., self-assembly, gelation, crystallization, solution/melt/solid-state characteristics); structure and properties (e.g., mechanical and rheological properties, surface/interfacial characteristics, electronic and transport properties); new state of the art characterization (e.g., spectroscopy, scattering, microscopy, rheology), simulation (e.g., Monte Carlo, molecular dynamics, multi-scale/coarse-grained modeling), and theoretical methods. Renewable/sustainable polymers, polymer networks, responsive polymers, electro-, magneto- and opto-active macromolecules, inorganic polymers, charge-transporting polymers (ion-containing, semiconducting, and conducting), nanostructured polymers, and polymer composites are also of interest. Typical papers published in Macromolecules showcase important and innovative concepts, experimental methods/observations, and theoretical/computational approaches that demonstrate a fundamental advance in the understanding of polymers.
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