The use of functionalized nanoparticles as non‐specific compatibilizers for polymer blends

The ability to form blends of polymers offers the opportunity of creating a new class of materials with enhanced properties. In addition to the polymer components, recent advances in nanoengineering have resulted in the development of nanosized inorganic particles that can be used to improve the properties of the blend, such as the flammability and the mechanical properties. While traditional methods using copolymer compatibilizers have been used to strengthen polymer blends, here, we show that the inorganic nanosized filler additive can also serve as a compatibilizer as it can localize to the interface between the polymers. We use experimental and theoretical studies to show the fundamental mechanisms by which inorganic fillers with large aspect ratio and at least one-dimension in the nanometer range, can act as non-specific compatibilizers for polymer blends. We examine a series of nanosized fillers, ranging from nanotubes to nanoclays (with varying aspect ratios) in a model polystyrene (PS)/poly(methylmethacyralate) (PMMA) blend. Using a number of experimental techniques such as transmission electron microscopy (TEM), scanning tunneling X-ray microscopy (STXM), and atomic force microscopy (AFM) we postulate that the mechanism of compatibilization occurs as a result of the fillers forming in situ grafts with the immiscible polymers. We alsomore » use theoretical studies to show that the aspect ratio and the bending energy of the fillers play a key role in the compatibilization process. Our results indicate that the compatibilization is a general phenomenon, which should occur with all large aspect ratio nanofiller additives to polymer blends.« less

[1]  G. Lu,et al.  Clay-based polymer nanocomposites: research and commercial development. , 2005, Journal of nanoscience and nanotechnology.

[2]  Harald Ade,et al.  Compatibilizing Bulk Polymer Blends by Using Organoclays , 2004 .

[3]  S. Advani,et al.  Advanced Polymeric Materials: Structure Property Relationships , 2003 .

[4]  S. Schwarz,et al.  Dynamics of polymers in organosilicate nanocomposites , 2003 .

[5]  D. Petridis,et al.  Emulsifying effect of dimethyldioctadecylammonium-hectorite in polystyrene/poly(ethyl methacrylate) blends , 2002 .

[6]  K. Kawamura,et al.  Molecular Simulation for Flexibility of a Single Clay Layer , 2001 .

[7]  Abraham Ulman,et al.  Sonochemical synthesis of functionalized amorphous iron oxide nanoparticles , 2001 .

[8]  Keng-hui Lin,et al.  Entropically driven self–assembly and interaction in suspension , 2001, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.

[9]  R. Vaia,et al.  Polymer Nanocomposites: Status and Opportunities , 2001 .

[10]  A. Balazs,et al.  Simulation of Hard Particles in a Phase-Separating Binary Mixture , 1999, cond-mat/9905284.

[11]  J. Sokolov,et al.  Phase segregation in polymer thin films: Elucidations by X-ray and scanning force microscopy , 1999 .

[12]  Jack F. Douglas,et al.  Phase-separation-induced surface patterns in thin polymer blend films , 1998 .

[13]  R. Vaia,et al.  Polymer Melt Intercalation in Organically-Modified Layered Silicates: Model Predictions and Experiment , 1997 .

[14]  U. Steiner,et al.  Structure formation via polymer demixing in spin-cast films , 1997 .

[15]  Thomas J. Pinnavaia,et al.  Interfacial Effects on the Reinforcement Properties of Polymer−Organoclay Nanocomposites , 1996 .

[16]  A. Mayes,et al.  Homopolymer Interfaces Reinforced with Random Copolymers , 1996 .

[17]  R. Tenne,et al.  High-Rate, Gas-Phase Growth of MoS2 Nested Inorganic Fullerenes and Nanotubes , 1995, Science.

[18]  Davis,et al.  Pattern evolution caused by dynamic coupling between wetting and phase separation in binary liquid mixture containing glass particles. , 1994, Physical review letters.

[19]  R. Tenne,et al.  Polyhedral and cylindrical structures of tungsten disulphide , 1992, Nature.

[20]  J Kirz,et al.  Chemical contrast in X-ray microscopy and spatially resolved XANES spectroscopy of organic specimens. , 1992, Science.

[21]  S. Timoshenko,et al.  Theory of elasticity , 1975 .