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Procedure for Fabricating Biofunctional Nanofibers
Published on: September 10, 2012
A Comparative Study: Unveiling the Nanomorphology Evolution and Fibrillation Pathways in Deprotonation vs
Weiwei Li1, Jinxue Lei1, Hongli Mi1
1School of Chemical Engineering and Modern Materials, Shaanxi Key Laboratory of Comprehensive Utilization of Tailings Resources, Shaanxi Engineering Research Center for Mineral Resources Clean & Efficient Conversion and New Materials, Shangluo University, Shangluo726000, China.
Abstract:
Aramid nanofibers (ANFs) are promising high-performance nanoscale building blocks, yet their application is hindered by the time-consuming conventional deprotonation method. This study systematically compares this traditional method with a proton donor-coupled deprotonation (PCD) strategy. While both preserve the core chemical structure of PPTA fibers, the PCD approach, by incorporating a proton donor, dramatically alters the reaction kinetics and nanofibrillation pathway. Comprehensive characterization confirms that it accelerates exfoliation from days to 4 h, yielding a highly transparent dispersion. Crucially, the synthesis pathway dictates the final nanomorphology: conventional ANFs form rigid networks with larger pores (∼44 nm), whereas PCD-derived ANFs are more interconnected and pliable, self-assembling into denser membranes with finer pores (∼9 nm). This structural divergence translates to superior integrated mechanical performance, with PCD-ANF membranes exhibiting a remarkable balance of high tensile strength (115.14 MPa) and good ductility (19.27%), alongside fully retained inherent flame retardancy. This work establishes fundamental structureproperty relationships, demonstrating that the choice of nanofibrillation mechanism is a powerful tool for tailoring nanoscale architecture in advanced functional materials.

