Structure and Mechanism of Strength Enhancement in Interpenetrating Polymer Network Hydrogels
暂无分享,去创建一个
Michael F. Toney | Curtis W. Frank | Kristin Engberg | M. Toney | A. Jackson | C. Frank | Dale J. Waters | Rachel Parke-Houben | Christopher N. Ta | Andrew Jackson | C. Ta | K. Engberg | Rachel Parke-Houben | D. Waters
[1] T. Kotaka,et al. Complex-Forming Polyoxyethylene: Poly(acrylic acid) Interpenetrating Polymer Networks III. Swelling and Mechanochemical Behavior , 1989 .
[2] T. Kurokawa,et al. Effect of polymer entanglement on the toughening of double network hydrogels. , 2005, The journal of physical chemistry. B.
[3] J. Gong,et al. Necking Phenomenon of Double-Network Gels , 2006 .
[4] T. Kurokawa,et al. Determination of fracture energy of high strength double network hydrogels. , 2005, The journal of physical chemistry. B.
[5] Yoshimi Tanaka,et al. Importance of entanglement between first and second components in high-strength double network gels , 2007 .
[6] J. E. Mark,et al. Model networks of end-linked polydimethylsiloxane chains , 1981 .
[7] J. Hubbell,et al. Conjugate addition reactions combined with free-radical cross-linking for the design of materials for tissue engineering. , 2001, Biomacromolecules.
[8] Won-Gun Koh,et al. Biomimetic strain hardening in interpenetrating polymer network hydrogels , 2007 .
[9] J. Gong,et al. Molecular model for toughening in double-network hydrogels. , 2008, The journal of physical chemistry. B.
[10] R. Audebert,et al. Polymer complexes stabilized through hydrogen bonds. Influence of “structure defects” on complex formation: Viscometry and fluorescence polarization measurements , 1988 .
[11] R. Arnold. The titration of polymeric acids , 1957 .
[12] C. Frank,et al. Complex formation between poly(acrylic acid) and pyrene-labeled polyethylene glycol in aqueous solution , 1987 .
[13] T. Kurokawa,et al. Direct Observation of Damage Zone around Crack Tips in Double-Network Gels , 2009 .
[14] T. A. Vilgis,et al. The effect of entanglements in rubber elasticity , 1986 .
[15] J. E. Mark,et al. Model networks of end‐linked polydimethylsiloxane chains. IX. Gaussian, non‐Gaussian, and ultimate properties of the trifunctional networks , 1980 .
[16] Yoshihito Osada,et al. Structural Characteristics of Double Network Gels with Extremely High Mechanical Strength , 2004 .
[17] T. Kotaka,et al. Complex-forming poly(oxyethylene)/poly(acrylic acid) interpenetrating polymer networks. 2. Function as a chemical valve , 1986 .
[18] Olli Ikkala,et al. Extended conformations of isolated molecular bottle‐brushes: Influence of side‐chain topology , 1998 .
[19] T. Kurokawa,et al. Double‐Network Hydrogels with Extremely High Mechanical Strength , 2003 .
[20] 超高強度 Double Network ゲルの創製とその高強度化メカニズム , 2008 .
[21] T. Kurokawa,et al. Tear Velocity Dependence of High-Strength Double Network Gels in Comparison with Fast and Slow Relaxation Modes Observed by Scanning Microscopic Light Scattering , 2008 .
[22] J. E. Mark,et al. Model networks of end‐linked polydimethylsiloxane chains. XI. Use of very short network chains to improve ultimate properties , 1981 .
[23] Shinzo Kohjiya,et al. Crossover of the concentration dependence of swelling and elastic properties for polysiloxane networks crosslinked in solution , 1996 .
[24] J. Gong,et al. Large Strain Hysteresis and Mullins Effect of Tough Double-Network Hydrogels , 2007 .
[25] M. Toney,et al. Morphology of Photopolymerized End-linked Poly(ethylene glycol) Hydrogels by Small Angle X-ray Scattering. , 2010, Macromolecules.
[26] Toyoichi Tanaka,et al. Volume transition in a gel driven by hydrogen bonding , 1991, Nature.
[27] T. Kotaka,et al. Complex-forming poly(oxyethylene):poly(acrylic acid) interpenetrating polymer networks. 1. Preparation, structure, and viscoelastic properties , 1985 .
[28] J. E. Mark,et al. Model networks of end‐linked polydimethylsiloxane chains. VII. Networks designed to demonstrate non‐Gaussian effects related to limited chain extensibility , 1980 .
[29] V. Khutoryanskiy,et al. PH effects in the complex formation and blending of poly(acrylic acid) with poly(ethylene oxide). , 2004, Langmuir : the ACS journal of surfaces and colloids.
[30] J. Gong,et al. The molecular origin of enhanced toughness in double-network hydrogels: A neutron scattering study☆ , 2007 .
[31] J. Gong,et al. Thermodynamic interactions in double-network hydrogels. , 2008, The journal of physical chemistry. B.
[32] Katsunori Itoh,et al. Simulations of the shape of a regularly branched polymer as a model of a polymacromonomer , 1999 .
[33] T. Kurokawa,et al. Localized Yielding Around Crack Tips of Double-Network Gels , 2008 .
[34] C. S. Patrickios,et al. Well-Defined Networks with Precisely Located Cleavable Sites: Structure Optimization and Core Functionality Determination , 2008 .
[35] Jian Ping Gong,et al. Why are double network hydrogels so tough , 2010 .
[36] Pierre-Emile Duhamel,et al. Progress in the development of interpenetrating polymer network hydrogels. , 2008, Polymers for advanced technologies.