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日用化学工业(中英文) ›› 2026, Vol. 56 ›› Issue (8): 977-983.doi: 10.3969/j.issn.2097-2806.2026.08.001

• 科技讲座 •    下一篇

黏弹性表面活性剂(VIII)——超长链非离子表面活性剂

刘璐璐1,陈强2,冯玉军2,*()   

  1. 1 中建八局新型建造工程有限公司上海 200000
    2 四川大学 高分子研究所 先进高分子材料工程全国重点实验室四川 成都 610065
  • 收稿日期:2026-08-01 出版日期:2026-08-22 发布日期:2026-09-02
  • 基金资助:
    国家自然科学基金项目(U22A20395);国家自然科学基金项目(21173207)

Viscoelastic surfactants (VIII) Ultra-long-chain nonionic surfactants

Lulu Liu1,Qiang Chen2,Yujun Feng2,*()   

  1. 1 China Construction Eighth Bureau New Construction Engineering Co., Ltd., Shanghai 200000, China
    2 State Key Laboratory of Advanced Polymer Materials, Polymer Research Institute, Sichuan University, Chengdu, Sichuan 610065, China
  • Received:2026-08-01 Online:2026-08-22 Published:2026-09-02
  • Contact: *E-mail: yjfeng@scu.edu.cn.

摘要:

超长链非离子表面活性剂(疏水尾链碳数超过C18)因能在极低浓度下自发形成蠕虫状胶束且无需外加助剂,已成为黏弹性表面活性剂领域的重要前沿方向。本综述系统梳理了该类表面活性剂在合成策略、溶解行为、流变特性及应用探索方面的最新进展。合成路线主要包括两条:以超长链脂肪酸与聚氧乙烯单甲醚经酯化反应制得聚醚型衍生物,以及通过酰胺化反应将芥酸等植物基原料与N-甲基-D-葡糖胺或N-乙基-D-葡糖胺偶联获得葡萄糖酰胺型产物。溶解性能可通过调控亲水头基尺寸、疏水尾链长度及不饱和度进行精细调节,并建立了定量构效关系以预测宽温域内的溶解行为。流变学研究表明,该类表面活性剂可自组装形成缠结的蠕虫状胶束网络或六方液晶相,即使在低温及较低浓度下仍表现出显著的剪切变稀特性和黏弹响应,基于上述特性,该体系已成功用于高价值植物的抗冻保护,通过在疏水性花瓣表面形成均匀稳定的覆盖层,协同发挥凝固点抑制、润湿增强及剪切响应黏度恢复等机制,有效缓解低温冻伤。展望未来,分子拓扑结构设计、绿色合成工艺开发及蠕虫状胶束形成热力学与网络动力学等基础问题的深入探究,将是推动该领域持续发展的关键方向。

关键词: 超长链表面活性剂, 非离子表面活性剂, 黏弹性表面活性剂, 蠕虫状胶束

Abstract:

Ultra-long-chain nonionic surfactants, featuring hydrophobic tails with carbon numbers beyond C18, have emerged as a significant frontier in viscoelastic surfactant research due to their capacity to form wormlike micelles at remarkably low concentrations without auxiliary hydrotropes. This review systematically delineates recent advances in the synthesis, solubility behavior, rheological properties, and application prospects of this class of amphiphiles. Two primary synthetic routes are highlighted: Esterification of fatty acids with polyoxyethylene monomethyl ether to produce polyether-type derivatives, and amidation with N-methyl-D-glucamine or N-ethyl-D-glucamine to afford glucosamide-based counterparts, both utilizing renewable plant-derived feedstocks such as erucic acid. Solubility modulation is achieved by tailoring hydrophilic headgroup size, hydrophobic tail length, and the number of unsaturated bonds, with quantitative structure-property correlations established to predict dissolution behavior across a wide temperature window. The glucosamide series further exhibits pronounced freezing-point depression, enabling subzero fluidity. Rheologically, these surfactants assemble into entangled wormlike micellar networks or hexagonal liquid crystalline phases, imparting significant shear-thinning characteristics and viscoelastic responses even at low concentrations and under freezing conditions. A representative glucosamide surfactant, UC22GEt, demonstrates a zero-shear viscosity as high as 4.17 × 105 mPa·s at 0 ℃ while retaining injectability at -14 ℃. Exploiting these unique features, the UC22GEt system has been successfully applied as a cryoprotectant for frost-sensitive plants, forming a uniform and stable coating on hydrophobic petal surfaces and effectively mitigating freeze-induced damage through synergistic mechanisms of freezing-point suppression, enhanced wettability, and shear-responsive viscosity recovery. Future directions are envisioned toward molecular topology engineering, greener synthetic methodologies, and deeper mechanistic understanding of the thermodynamic driving forces and network dynamics governing wormlike micelle formation.

Key words: ultra-long-chain surfactant, nonionic surfactant, viscoelastic surfactant, wormlike micelles

中图分类号: 

  • TQ423