Univ Lyon, INSA Lyon, UMR CNRS 5223, IMP Ingénierie des Matériaux Polymères, F-69621 Villeurbanne, France.
Univ Lyon, INSA Lyon, UMR CNRS 5223, IMP Ingénierie des Matériaux Polymères, F-69621 Villeurbanne, France.
Carbohydr Polym. 2016 Oct 20;151:373-380. doi: 10.1016/j.carbpol.2016.05.042. Epub 2016 May 17.
PeakForce Quantitative Nanomechanical Mapping (QNM) AFM mode was used to explore the mechanical properties of textured chitin-silica hybrid films at the nanoscale. The influence of the force applied by the tip on the sample surface was studied for standard homogeneous samples, for chitin nanorods and for chitin-silica hybrid nanocomposites. Thick films of superimposed chitin nanorods showed a monotonous increase of DMT modulus (based on the Derjaguin-Muller-Toporov model) owing to an increase in modulus at the interface between nanorods due to geometrical constraints of the AFM acquisition. A similar variation of DMT modulus was obtained for chitin-silica hybrid thick films related to mechanical strengthening induced by the presence of silica. This work revealed the role of the organic-inorganic interface, at the nanoscale, in the mechanical behaviour of textured materials using PeakForce QNM mode, with optimized analysis conditions.
采用 PeakForce 定量纳米力学映射(QNM)原子力显微镜模式探索了具有纹理的壳聚糖-二氧化硅杂化薄膜在纳米尺度下的力学性能。研究了针尖对样品表面施加的力对标准均匀样品、壳聚糖纳米棒和壳聚糖-二氧化硅杂化纳米复合材料的影响。由于 AFM 采集的几何限制导致纳米棒之间界面处的模量增加,因此叠加壳聚糖纳米棒的厚膜表现出 DMT 模量(基于德加古林-米勒-托波洛夫模型)单调增加。与由于二氧化硅的存在而引起的机械增强相关的壳聚糖-二氧化硅杂化厚膜也获得了相似的 DMT 模量变化。这项工作使用 PeakForce QNM 模式,通过优化分析条件,揭示了纳米尺度下有机-无机界面在具有纹理材料的力学行为中的作用。