Superior mechanical performance of in-situ nanofibrillar HDPE/PTFE composites with highly oriented and compacted nanohybrid shish-kebab structure
暂无分享,去创建一个
F. Chen | Tairong Kuang | Xiangfang Peng | Jintao Yang | Mingqiang Zhong | Tong-xun Liu | Jiajun Ju | Bozhen Wu
[1] Q. Zheng,et al. Extensional flow-induced conductive nanohybrid shish in poly(lactic acid) nanocomposites toward pioneering combination of high electrical conductivity, strength, and ductility , 2020, Composites Part B: Engineering.
[2] Chul B. Park,et al. Enhancing the mechanical performance of PA6 based composites by altering their crystallization and rheological behavior via in-situ generated PPS nanofibrils , 2020, Composites Part B: Engineering.
[3] Xianqiong Zhao,et al. A generalized distribution function of fiber orientation for injection molded composites , 2020 .
[4] Tairong Kuang,et al. Facile fabrication of fully biodegradable and biorenewable poly (lactic acid)/poly (butylene adipate-co-terephthalate) in-situ nanofibrillar composites with high strength, good toughness and excellent heat resistance , 2020 .
[5] Yujing Tang,et al. Structural evolution of stretch deformed HDPE/RGO nanocomposites: An in-situ synchrotron SAXS and WAXD study , 2019, Composites Science and Technology.
[6] J. Qu,et al. Super-toughened poly(lactic acid)/thermoplastic poly(ether)urethane nanofiber composites with in-situ formation of aligned nanofibers prepared by an innovative eccentric rotor extruder , 2019, Composites Science and Technology.
[7] Yixin Jiang,et al. Insight into Understanding the Influence of Blending Ratio on the Structure and Properties of High-Density Polyethylene/Polystyrene Microfibril Composites Prepared by Vibration Injection Molding , 2018, Industrial & Engineering Chemistry Research.
[8] Chul B. Park,et al. Facile production of biodegradable PCL/PLA in situ nanofibrillar composites with unprecedented compatibility between the blend components , 2018, Chemical Engineering Journal.
[9] Tairong Kuang,et al. Formation of stretched fibrils and nanohybrid shish-kebabs in isotactic polypropylene-based nanocomposites by application of a dynamic oscillatory shear , 2018, Chemical Engineering Journal.
[10] I. Kelnar,et al. Complex effect of graphite nanoplatelets on performance of HDPE/PA66 microfibrillar composites , 2018, Composites Part B: Engineering.
[11] Shaoyun Guo,et al. Extensional flow-induced hybrid crystalline fibrils (shish) in CNT/PLA nanocomposite , 2018 .
[12] Linghe Cheng,et al. Crystallization and morphological and crystal structures of PP in an in situ microfibrillar composite of modified PA66 with PP , 2018 .
[13] Tairong Kuang,et al. Poly (propylene carbonate)-based in situ nanofibrillar biocomposites with enhanced miscibility, dynamic mechanical properties, rheological behavior and extrusion foaming ability , 2017 .
[14] Shaoyun Guo,et al. In Situ Formation of Microfibrillar Crystalline Superstructure: Achieving High-Performance Polylactide. , 2017, ACS applied materials & interfaces.
[15] X. Ji,et al. Interfacial Shish-Kebabs Lengthened by Coupling Effect of In Situ Flexible Nanofibrils and Intense Shear Flow: Achieving Hierarchy To Conquer the Conflicts between Strength and Toughness of Polylactide. , 2017, ACS applied materials & interfaces.
[16] B. Hsiao,et al. Biomimetic Nanofibrillation in Two-Component Biopolymer Blends with Structural Analogs to Spider Silk , 2016, Scientific Reports.
[17] A. P. Kharitonov,et al. Bulk oriented nanocomposites of ultrahigh molecular weight polyethylene reinforced with fluorinated multiwalled carbon nanotubes with nanofibrillar structure , 2016 .
[18] B. Hsiao,et al. In Situ Nanofibrillar Networks Composed of Densely Oriented Polylactide Crystals as Efficient Reinforcement and Promising Barrier Wall for Fully Biodegradable Poly(butylene succinate) Composite Films , 2016 .
[19] X. Ji,et al. Super-Robust Polylactide Barrier Films by Building Densely Oriented Lamellae Incorporated with Ductile in Situ Nanofibrils of Poly(butylene adipate-co-terephthalate). , 2016, ACS applied materials & interfaces.
[20] X. Ji,et al. Industrially Scalable Approach to Nanohybrid Shish Kebabs by In Situ Nanofibrillation of Isotactic Poly(propylene) , 2015 .
[21] M. Nie,et al. Biaxial reinforcements for polybutene-1 medical-tubes achieved via flow-design controlled morphological development of incorporated polystyrene: In-situ microfibrillation, alignment manipulation and performance optimization , 2015 .
[22] Sen-lin Yang,et al. In situ nano-fibrillation of microinjection molded poly(lactic acid)/poly(ε-caprolactone) blends and comparison with conventional injection molding , 2015 .
[23] Q. Fu,et al. In situ micro and nano fibrillar reinforced elastomer composites based on polypropylene (PP)/olefinic block copolymer (OBC) , 2015 .
[24] Zhe Ma,et al. Kinetic Process of Shish Formation: From Stretched Network to Stabilized Nuclei , 2015 .
[25] X. Ji,et al. Unprecedented access to strong and ductile poly(lactic acid) by introducing In Situ Nanofibrillar Poly(butylene succinate) for green packaging. , 2014, Biomacromolecules.
[26] S. Fakirov. Nano-/microfibrillar polymer–polymer and single polymer composites: The converting instead of adding concept , 2013 .
[27] Zhi-Yong Wang,et al. In situ fibrillation of polymeric nucleating agents in polypropylene and subsequent transcrystallization propelled by high-pressure water penetration during water-assisted injection molding , 2013 .
[28] J. Keum,et al. Formation and Stability of Shear-Induced Shish-Kebab Structure in Highly Entangled Melts of UHMWPE/HDPE Blends , 2008 .
[29] K. Friedrich,et al. Microfibrillar reinforced composites from PET/PP blends: processing, morphology and mechanical properties , 2005 .
[30] L. Nicolais,et al. Novel reinforced polymers based on blends of polystyrene and a thermotropic liquid crystalline polymer , 1987 .
[31] G. Kiss. In situ composites: blends of isotropic polymers and thermotropic liquid crystalline polymers , 1987 .
[32] W. Ruland,et al. Single and multiple X-ray small-angle scattering of carbon fibres , 1969 .