确定酸橙果实弹性机械性能的宏观和微观研究。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Sanaz Vatani, Mohammad Hossein Abbaspour-Fard, Rasool Khodabakhshian
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引用次数: 0

摘要

鉴于农产品在全球健康和食品安全方面的极端重要性,以及消费者日益增长的需求,了解这些材料在各种条件下的机械行为是必要的,但也是具有挑战性的。由于其异质性和非均匀性,确定其机械行为非常复杂。本研究采用原子力显微镜(AFM)在微观尺度上测定酸橙果实的弹性模量,并与宏观方法进行比较。分析表明,在宏观尺度上测定的机械行为在统计学上存在显著差异(1% 水平)。在两个平行平面之间完全放置的情况下,使用赫兹理论观察到的弹性模量最高,为 0.752 兆帕。最低的弹性模量为 0.059 兆帕,是球形探针压缩矩形样品时测得的。酸橙果皮的平均弹性模量为 2.007 兆帕。在微观尺度上,果实组织的弹性模量在 0.370 至 0.365 兆帕之间,果皮的弹性模量为 0.246 兆帕。研究亮点:阐述了这一创新技术的工作原理。所使用的原子力显微镜技术可在纳米尺度上测定从生物材料中提取的单个活细胞的细胞壁的弹性力学性能。通过将原子力显微镜地形图像与活体水果细胞的纳米压痕相结合,将有可能研究细胞的弹性机械特性。原子力显微镜在监测生物材料的果实机械特性方面具有巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Macroscopic and microscopic investigations of determining elasto-mechanical properties of limequat fruit.

Given the paramount importance of agricultural products in global health and food security, and the increasing consumer demand, understanding the mechanical behavior of these materials under various conditions is necessary yet challenging. Due to their heterogeneous and non-uniform nature, determining their mechanical behavior is complex. This study employs atomic force microscopy (AFM) to determine the modulus of elasticity of limequat fruit at the microscopic scale and compares it with macroscopic methods. The analyses revealed a statistically significant difference (at the 1% level) in the mechanical behavior determined at the macroscopic scale. The highest modulus of elasticity, 0.752 MPa, was observed using Hertz's theory under complete placement between two parallel planes. The lowest, 0.059 MPa, was noted when a spherical probe compressed a rectangular sample. The average modulus of elasticity of the limequat peel was 2.007 MPa. At the microscopic scale, the modulus of elasticity of the fruit tissue ranged from 0.370 to 0.365 MPa, and for the peel, it was 0.246 MPa. RESEARCH HIGHLIGHTS: Working principles of this innovative technique were elaborated. The AFM technique used provide elasto-mechanical properties determination of cell walls of single living cells extracted from biological materials on the nanoscale. By combining AFM topographical image and nano-indentation of living fruit cells it will be possible to investigate cells' elasto-mechanical properties. Atomic force microscopy holds great potential for monitoring fruit mechanical properties of biological materials.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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