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关于腐殖质的凝胶化:从瞬态网络到共价网络

On the gelation of humins: from transient to covalent networks.

作者信息

Cerdan Kenneth, Gandara-Loe Jesus, Arnauts Giel, Vangramberen Vedran, Ginzburg Anton, Ameloot Rob, Koos Erin, Van Puyvelde Peter

机构信息

Department of Chemical Engineering, Soft Matter, Rheology and Technology (SMaRT), KU Leuven, Celestijnenlaan 200J, 3001 Heverlee, Belgium.

Department of Microbial and Molecular Systems, Centre for Membrane Separation, Adsorption, Catalysis and Spectroscopy, KU Leuven, Celestijnenlaan 200J, 3001 Heverlee, Belgium.

出版信息

Soft Matter. 2023 Apr 12;19(15):2801-2814. doi: 10.1039/d2sm01506d.

Abstract

Humins are a by-product of many acid-catalyzed biorefinery processes converting polysaccharides into platform chemicals. The valorization of humin residue to increase the profit of biorefinery operations and reduce waste is a field that is growing interest as the production of humins continues to increase. This includes their valorization in materials science. For successful processing of humin-based materials, this study aims to understand the thermal polymerization mechanisms of humins from a rheological perspective. Thermal crosslinking of raw humins leads to an increase in their molecular weight, which in turn leads to the formation of a gel. Humin's gels structure combines physical (thermally reversible) and chemical (thermally irreversible) crosslinks, and temperature plays an essential role in the crosslink density and the gel properties. High temperatures delay the formation of a gel due to the scission of physicochemical interactions, drastically decreasing their viscosity, whereas upon cooling a stronger gel is formed combining the recovered physicochemical bonds and the newly created chemical crosslinks. Thus, a transition from a supramolecular network to a covalently crosslinked network is observed, and properties such as the elasticity or reprocessability of humin gels are influenced by the stage of polymerization.

摘要

腐殖质是许多将多糖转化为平台化学品的酸催化生物炼制过程的副产物。随着腐殖质产量的持续增加,将腐殖质残渣进行增值利用以提高生物炼制操作的利润并减少浪费,这一领域正日益受到关注。这包括它们在材料科学中的增值利用。为了成功加工基于腐殖质的材料,本研究旨在从流变学角度了解腐殖质的热聚合机制。原始腐殖质的热交联导致其分子量增加,进而导致凝胶的形成。腐殖质凝胶结构结合了物理(热可逆)和化学(热不可逆)交联,温度在交联密度和凝胶性质中起着至关重要的作用。高温由于物理化学相互作用的断裂而延迟凝胶的形成,使其粘度急剧降低,而冷却后会形成更强的凝胶,结合恢复的物理化学键和新形成的化学交联。因此,观察到从超分子网络到共价交联网络的转变,腐殖质凝胶的弹性或可再加工性等性质受聚合阶段的影响。

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