纤维素气凝胶凝胶化过程的建模。

IF 5.5 2区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Biomacromolecules Pub Date : 2025-04-14 Epub Date: 2025-03-03 DOI:10.1021/acs.biomac.4c01474
Jannik Jarms, Nina H Borzęcka, Bruno Serrador Goncalves, Kathirvel Ganesan, Barbara Milow, Ameya Rege
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引用次数: 0

摘要

纤维素气凝胶是文献中研究得最充分的基于生物聚合物的体系,但我们缺乏对潜在凝胶机制的完整理解,以及溶剂交换对其网络拓扑结构的影响。这项工作提出了一个粗粒度模型,描述纤维素气凝胶系统中的凝胶动力学。采用离散元模型生成纤维素结构,对溶剂进行隐式建模。朗之万动力学应用于求解牛顿方程组。该模型成功地生成了纤维素凝胶、水凝胶、醇凝胶和气凝胶的结构。对模型参数进行了灵敏度分析,并与实验数据进行了对比验证。该模型提供了对凝胶机制的见解,同时也揭示了由洗涤、溶剂交换和干燥步骤引起的形态改变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of the Gelation Process in Cellulose Aerogels.

Cellulose aerogels are the most well-studied biopolymer-based systems in the literature, yet we lack a complete understanding of the underlying gelation mechanism, as well as that of the effect of solvent exchange on the topology of their network. This work presents a coarse-grained model describing the gelation kinetics in cellulose aerogel systems. A discrete element model is employed to generate the cellulose structure, and the solvents are modeled implicitly. Langevin dynamics is applied to solve the system of Newtonian equations. The model successfully generates the structure of the cellulose gel, hydrogel, alcogel, as well as aerogel. A model parameter sensitivity analysis is presented, and the results of the model are validated against the experimental data. The model provides insights into the mechanism of gelation while also shedding light on the morphological alterations resulting from the washing, solvent exchange, and drying steps.

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来源期刊
Biomacromolecules
Biomacromolecules 化学-高分子科学
CiteScore
10.60
自引率
4.80%
发文量
417
审稿时长
1.6 months
期刊介绍: Biomacromolecules is a leading forum for the dissemination of cutting-edge research at the interface of polymer science and biology. Submissions to Biomacromolecules should contain strong elements of innovation in terms of macromolecular design, synthesis and characterization, or in the application of polymer materials to biology and medicine. Topics covered by Biomacromolecules include, but are not exclusively limited to: sustainable polymers, polymers based on natural and renewable resources, degradable polymers, polymer conjugates, polymeric drugs, polymers in biocatalysis, biomacromolecular assembly, biomimetic polymers, polymer-biomineral hybrids, biomimetic-polymer processing, polymer recycling, bioactive polymer surfaces, original polymer design for biomedical applications such as immunotherapy, drug delivery, gene delivery, antimicrobial applications, diagnostic imaging and biosensing, polymers in tissue engineering and regenerative medicine, polymeric scaffolds and hydrogels for cell culture and delivery.
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