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椰子内果皮次生细胞壁中纤维素-半纤维素-木质素的相互作用

Cellulose-Hemicellulose-Lignin Interaction in the Secondary Cell Wall of Coconut Endocarp.

作者信息

Mazumder Sharmi, Zhang Ning

机构信息

Department of Mechanical Engineering, Baylor University, Waco, TX 76706, USA.

出版信息

Biomimetics (Basel). 2023 May 4;8(2):188. doi: 10.3390/biomimetics8020188.

Abstract

The coconut shell consists of three distinct layers: the skin-like outermost exocarp, the thick fibrous mesocarp, and the hard and tough inner endocarp. In this work, we focused on the endocarp because it features a unique combination of superior properties, including low weight, high strength, high hardness, and high toughness. These properties are usually mutually exclusive in synthesized composites. The microstructures of the secondary cell wall of the endocarp at the nanoscale, in which cellulose microfibrils are surrounded by hemicellulose and lignin, were generated. All-atom molecular dynamics simulations with PCFF force field were conducted to investigate the deformation and failure mechanisms under uniaxial shear and tension. Steered molecular dynamics simulations were carried out to study the interaction between different types of polymer chains. The results demonstrated that cellulose-hemicellulose and cellulose-lignin exhibit the strongest and weakest interactions, respectively. This conclusion was further validated against the DFT calculations. Additionally, through shear simulations of sandwiched polymer models, it was found that cellulose-hemicellulose-cellulose exhibits the highest strength and toughness, while cellulose-lignin-cellulose shows the lowest strength and toughness among all tested cases. This conclusion was further confirmed by uniaxial tension simulations of sandwiched polymer models. It was revealed that hydrogen bonds formed between the polymer chains are responsible for the observed strengthening and toughening behaviors. Additionally, it was interesting to note that failure mode under tension varies with the density of amorphous polymers located between cellulose bundles. The failure mode of multilayer polymer models under tension was also investigated. The findings of this work could potentially provide guidelines for the design of coconut-inspired lightweight cellular materials.

摘要

椰壳由三个不同的层组成

薄皮状的最外层外果皮、厚厚的纤维状中果皮和坚硬且坚韧的内层内果皮。在这项工作中,我们专注于内果皮,因为它具有独特的优异性能组合,包括重量轻、强度高、硬度高和韧性高。这些性能在合成复合材料中通常是相互排斥的。生成了内果皮次生细胞壁在纳米尺度下的微观结构,其中纤维素微纤丝被半纤维素和木质素包围。采用PCFF力场进行了全原子分子动力学模拟,以研究单轴剪切和拉伸下的变形和破坏机制。进行了引导分子动力学模拟,以研究不同类型聚合物链之间的相互作用。结果表明,纤维素 - 半纤维素和纤维素 - 木质素分别表现出最强和最弱的相互作用。这一结论通过密度泛函理论(DFT)计算得到了进一步验证。此外,通过对夹心聚合物模型的剪切模拟发现,在所有测试案例中,纤维素 - 半纤维素 - 纤维素表现出最高的强度和韧性,而纤维素 - 木质素 - 纤维素表现出最低的强度和韧性。这一结论通过夹心聚合物模型的单轴拉伸模拟得到了进一步证实。结果表明,聚合物链之间形成的氢键是观察到的强化和增韧行为的原因。此外,值得注意的是,拉伸下的破坏模式随纤维素束之间无定形聚合物的密度而变化。还研究了多层聚合物模型在拉伸下的破坏模式。这项工作的发现可能为设计受椰子启发的轻质多孔材料提供指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3044/10204492/8ecce100242a/biomimetics-08-00188-g001.jpg

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