Wu Qian, Zhou Chen, Niu Mengyao, Hu Jiaxin, Feng Nianjie, Mhatre Sameer, Lu Yi, Niu Xun, Guo Tianyu, Chen Jingqian, Bi Ran, Rojas Orlando J
Hubei Key Laboratory of Industrial Microbiology, Key Laboratory of Fermentation Engineering (Ministry of Education), National "111" Center for Cellular Regulation and Molecular Pharmaceutics, Hubei University of Technology, Wuhan, Hubei 430068, China.
Bioproducts Institute, Department of Chemical & Biological Engineering, The University of British Columbia, Vancouver, British Columbia V6T 1Z3, Canada.
ACS Appl Mater Interfaces. 2025 Jun 11;17(23):34647-34658. doi: 10.1021/acsami.5c00132. Epub 2025 May 31.
Nanochitins exhibit unique structural attributes that confer distinct physical properties to multiphase systems. Amphiphilic tannic acid (TA) serves as an excellent candidate for interfacial modification via electrostatic adsorption and complexation with nanochitin. In this study, we developed green and food-safe strategies to enhance the stabilizing and functional performance of complexes formed through the coassembly of chitin nanofibers (ChNF) and TA. Their interactions were systematically investigated using spectroscopy, rheological measurements, and molecular simulations, all confirming strong interfacial binding primarily through hydrogen bonding. X-ray diffraction analysis further revealed TA-induced changes in ChNF crystallinity. The resulting ChNF-TA complexes effectively stabilized high internal phase Pickering emulsions (HIPPEs), which exhibited long-term stability and were successfully applied in direct ink writing. The exceptional stability of the HIPPEs was attributed to the synergistic effects of electrostatic charge neutralization and interfacial tension reduction. Quartz crystal microgravimetry demonstrated rapid complexation, with TA binding to ChNF thin films at a level of approximately 450 ng/cm. The resulting HIPPEs remained stable for at least two months and readily formed cryogels upon freeze-drying. Owing to their enhanced stability and viscoelastic properties, HIPPEs stabilized with ChNF-TA complexes offer a promising platform for the development of sustainable emulsions, with the potential for customization in personalized food and related fields.
纳米几丁质具有独特的结构属性,赋予多相系统独特的物理性质。两亲性单宁酸(TA)是通过静电吸附和与纳米几丁质络合进行界面改性的极佳候选物。在本研究中,我们开发了绿色且食品安全的策略,以增强通过几丁质纳米纤维(ChNF)和TA共组装形成的复合物的稳定和功能性能。使用光谱学、流变学测量和分子模拟对它们的相互作用进行了系统研究,所有结果均证实主要通过氢键形成了强界面结合。X射线衍射分析进一步揭示了TA诱导的ChNF结晶度变化。所得的ChNF-TA复合物有效地稳定了高内相Pickering乳液(HIPPE),该乳液表现出长期稳定性,并成功应用于直接墨水书写。HIPPE的卓越稳定性归因于静电荷中和和界面张力降低的协同效应。石英晶体微天平显示出快速络合,TA以约450 ng/cm的水平结合到ChNF薄膜上。所得的HIPPE至少稳定两个月,冻干后易于形成冷冻凝胶。由于其增强的稳定性和粘弹性,用ChNF-TA复合物稳定的HIPPE为可持续乳液的开发提供了一个有前景的平台,具有在个性化食品及相关领域进行定制的潜力。