Combined impact of moisture and temperature on cellulose nanocrystal interface degradation by molecular dynamics simulation

IF 3.1 2区 农林科学 Q1 FORESTRY Wood Science and Technology Pub Date : 2024-09-02 DOI:10.1007/s00226-024-01598-3
Jialiang Li, Yujun Li, Zhengdao Li, Yongkang Wang, Jianjun Jiang
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Abstract

Cellulose nanocrystals (CNCs), derived from abundant natural cellulose, possess exceptional properties including low weight, bioavailability, and high mechanical performance. During shear loading, CNCs exhibit unique stick–slip behavior, making them excellent toughening materials for CNC neat films and nanocomposite. However, the failure behavior at the interface under specific conditions, particularly moisture and temperature, remains unclear. The study utilized molecular dynamics (MD) simulations to quantitatively investigate the hydrothermal effect on the degradation of CNC interface. The degradation mechanism induced by moisture and temperature was indicated through the reduction of adhesive energy and peak force with the consideration of hydrogen bonds. The simulation results showed that the role of water molecules in the interfacial failure depends their content. Water acted as a binder at low moisture levels, while at high moisture levels, it acted as a lubricant. Besides, temperature had a more pronounced impact on the interfacial shear performance. Our simulation results can be used as input in micromechanical models to bridge the gap between the macroscopic and microscopic behavior of films and nanocomposites.

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分子动力学模拟水分和温度对纤维素纳米晶界面降解的综合影响
纤维素纳米晶体(CNC)提取自丰富的天然纤维素,具有重量轻、生物利用率高和机械性能高等优异特性。在剪切加载过程中,CNCs 表现出独特的粘滑行为,是 CNC 薄膜和纳米复合材料的极佳增韧材料。然而,在特定条件下,尤其是在湿度和温度条件下,界面的破坏行为仍不清楚。本研究利用分子动力学(MD)模拟定量研究了水热效应对 CNC 界面降解的影响。考虑到氢键的作用,研究人员通过降低粘合能和峰值力,指出了湿度和温度诱导的降解机制。模拟结果表明,水分子在界面破坏中的作用取决于其含量。水分含量低时,水起到粘合剂的作用,而水分含量高时,水起到润滑剂的作用。此外,温度对界面剪切性能的影响更为明显。我们的模拟结果可作为微观力学模型的输入,以缩小薄膜和纳米复合材料的宏观和微观行为之间的差距。
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来源期刊
Wood Science and Technology
Wood Science and Technology 工程技术-材料科学:纸与木材
CiteScore
5.90
自引率
5.90%
发文量
75
审稿时长
3 months
期刊介绍: Wood Science and Technology publishes original scientific research results and review papers covering the entire field of wood material science, wood components and wood based products. Subjects are wood biology and wood quality, wood physics and physical technologies, wood chemistry and chemical technologies. Latest advances in areas such as cell wall and wood formation; structural and chemical composition of wood and wood composites and their property relations; physical, mechanical and chemical characterization and relevant methodological developments, and microbiological degradation of wood and wood based products are reported. Topics related to wood technology include machining, gluing, and finishing, composite technology, wood modification, wood mechanics, creep and rheology, and the conversion of wood into pulp and biorefinery products.
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