In situ nanomechanical properties of natural oil bodies studied using atomic force microscopy

原位 原子力显微镜 纳米压痕 材料科学 自然(考古学) 化学 复合材料 化学工程 纳米技术 地质学 有机化学 古生物学 工程类
作者
Nan Yang,Chunxia Su,Yuemei Zhang,Junji Jia,Robert L. Leheny,Katsuyoshi Nishinari,Yapeng Fang,Glyn O. Phillips
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:570: 362-374 被引量:44
标识
DOI:10.1016/j.jcis.2020.03.011
摘要

Natural oil bodies (OBs) from plant organs represent an important category of functional ingredients and materials in a variety of industrial sectors. Their applications are closely related to the membrane mechanical properties on a single droplet level, which remain difficult to determine. In this research, the mechanical properties of the membranes of OBs from soybean, sesame, and peanut were investigated in-situ by atomic force microscopy (AFM). Different regions of the force-deformation curves obtained during compression were analyzed to extract the stiffness Kb or Young’s modulus of the OB membranes using Hooke’s law, Reissner theory, and the elastic membrane theory. At higher strains (ε = 0.15–0.20), the elastic membrane theory breaks down. We propose an extension of the theory that includes a contribution to the force from interfacial tension based on the Gibbs energy, allowing effective determination of Young’s modulus and interfacial tension of the OB membranes in the water environment simultaneously. The mechanical properties of the OBs of different sizes and species, as well as a comparison with other phospholipid membrane materials, are discussed and related to their membrane compositions and structures. It was found that the natural OBs are soft droplets but do not rupture and can fully recover following compressive strains as large as 0.3. The OBs with higher protein/oil ratio, have smaller size and stronger mechanical properties, and thus are more stable. The low interfacial tension due to the existence of phospholipid-protein membrane also contributes to the stability of the OBs. This is the first report measuring the mechanical properties of OB membranes in-situ directly.
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