Run Zhang, Chenchao Fu, Guozheng Zhao, Weiheng Mo, Famin Zhao, Xiangrong Li, Qiuxu Chen, Lin Zhuo
Controlling fibril generation and retaining their morphology during secondary thermal processing remain critical challenges for in-situ microfibrillar composites. Herein, we propose a "melt blending-hot drawing-low-temperature injection" cascade strategy to fabricate polypropylene/polyamide 66 (PP/PA66) composites. By decoupling the synergistic effects of draw ratio (λ) and compatibilizer (PP-g-MAH), an optimal fibrillation window was identified (15 wt% PA66, 3 wt% compatibilizer, λ = 9), which balances interfacial tension and viscous drag to form a dense, oriented microfibrillar network. This solid-state network accelerates matrix nucleation (though slightly restricting overall crystallinity) and induces gel-like rheological behavior through severe structural confinement. Crucially, we demonstrate that conventional high-temperature injection (265 °C) triggers Rayleigh instability, causing fibril break-up and mechanical degradation. Conversely, low-temperature injection (210 °C) successfully achieves the "geometric freezing" of the metastable fibril network. Consequently, the optimal composite exhibits maximized static strength (45.3 MPa) and a continuous, significant leap in notch impact toughness (10.16 kJ/m2). This work bridges the gap between flow-induced fibrillation and thermodynamic morphological retention, offering a robust physical mechanism for high-performance polyolefin composites.