Mechanical Requirements of Shape-Memory Polymers in Biomedical Devices
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[1] J. Palamara,et al. Time-dependent properties of human root dentin. , 2002, Dental materials : official publication of the Academy of Dental Materials.
[2] Tony M Keaveny,et al. Heterogeneity of yield strain in low-density versus high-density human trabecular bone. , 2009, Journal of biomechanics.
[3] Markus J. Buehler,et al. Nature designs tough collagen: Explaining the nanostructure of collagen fibrils , 2006, Proceedings of the National Academy of Sciences.
[4] M. G. Volpe,et al. Compatibilized poly(ε-caprolactone)/poly(L-lactide) blends for biomedical uses , 1999 .
[5] M. Hillmyer,et al. A bifunctional monomer derived from lactide for toughening polylactide. , 2008, Journal of the American Chemical Society.
[6] J. Suh,et al. Biphasic poroviscoelastic simulation of the unconfined compression of articular cartilage: II--Effect of variable strain rates. , 2001, Journal of biomechanical engineering.
[7] R E Guldberg,et al. Mechanical properties of a novel PVA hydrogel in shear and unconfined compression. , 2001, Biomaterials.
[8] Reza Rabiei,et al. Toughness amplification in natural composites , 2011 .
[9] Wei Min Huang,et al. On the effects of moisture in a polyurethane shape memory polymer , 2004 .
[10] D. Maitland,et al. Shape‐memory behavior of thermally stimulated polyurethane for medical applications , 2007 .
[11] Joaquín López,et al. Effect of water sorption on the structure and mechanical properties of an epoxy resin system , 2001 .
[12] T. L. Smith,et al. Time and Temperature Dependence of the Ultimate Properties of an SBR Rubber at Constant Elongations , 1960 .
[13] W. W. Wright. The effect of diffusion of water into epoxy resins and their carbon-fibre reinforced composites , 1981 .
[14] S. Cowin,et al. Biomechanics: Mechanical Properties of Living Tissues, 2nd ed. , 1994 .
[15] Robert L. Rennaker,et al. Fabrication of Responsive, Softening Neural Interfaces , 2012 .
[16] S. Kotha,et al. Tensile damage and its effects on cortical bone. , 2003, Journal of biomechanics.
[17] Naresh K. C. Selvarasu,et al. Hydrodynamic effects of compliance mismatch in stented arteries. , 2011, Journal of biomechanical engineering.
[18] Chaenyung Cha,et al. Biodegradable Polymer Crosslinker: Independent Control of Stiffness, Toughness, and Hydrogel Degradation Rate , 2009 .
[19] D. Safranski,et al. Biodegradable thermoset shape‐memory polymer developed from poly(β‐amino ester) networks , 2012 .
[20] A Ratcliffe,et al. Cartilage and diarthrodial joints as paradigms for hierarchical materials and structures. , 1992, Biomaterials.
[21] Robert Langer,et al. AB-polymer networks based on oligo(epsilon-caprolactone) segments showing shape-memory properties. , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[22] I. Rousseau,et al. Effect of the Deformation Temperature on the Shape‐Memory Behavior of Epoxy Networks , 2010 .
[23] Ken Gall,et al. Long-term toughness of photopolymerizable (meth)acrylate networks in aqueous environments. , 2011, Acta biomaterialia.
[24] Walter Voit,et al. Triple-Shape Memory Polymers Based on Self-Complementary Hydrogen Bonding. , 2012, Macromolecules.
[25] C Birkinshaw,et al. Selection of elastomeric materials for compliant-layered total hip arthroplasty , 2002, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[26] J P Bearinger,et al. Post-Polymerization Crosslinked Polyurethane Shape-Memory Polymers. , 2010, Journal of applied polymer science.
[27] Scott J Hollister,et al. Poly(glycerol-dodecanoate), a biodegradable polyester for medical devices and tissue engineering scaffolds. , 2009, Biomaterials.
[28] D. Bikiaris,et al. Aging studies of light cured dimethacrylate-based dental resins and a resin composite in water or ethanol/water. , 2007, Dental materials : official publication of the Academy of Dental Materials.
[29] N. King,et al. Use of focused ion beam milling for investigating the mechanical properties of biological tissues: a study of human primary molars. , 2009, Journal of the mechanical behavior of biomedical materials.
[30] K. Gall,et al. The effect of chemistry on the polymerization, thermo-mechanical properties and degradation rate of poly(β-amino ester) networks , 2010 .
[31] Robert Langer,et al. Shape-memory polymer networks from oligo(?-caprolactone)dimethacrylates , 2005 .
[32] Kevin A. Snook,et al. 縦方向電界場中で曲げたPIN-PMN-PT単結晶の強度 , 2011 .
[33] Swee Hin Teoh,et al. Fatigue of biomaterials: a review , 2000 .
[34] Andreas Lendlein,et al. Shape-memory polymer networks from oligo[(epsilon-hydroxycaproate)-co-glycolate]dimethacrylates and butyl acrylate with adjustable hydrolytic degradation rate. , 2007, Biomacromolecules.
[35] H. Wulf,et al. Water and protein structure in photoaged and chronically aged skin. , 1998, The Journal of investigative dermatology.
[36] B. Tighe,et al. Synthetic hydrogels: 3. Hydroxyalkyl acrylate and methacrylate copolymers: surface and mechanical properties , 1988 .
[37] J. Burdick,et al. Identification of osteoconductive and biodegradable polymers from a combinatorial polymer library. , 2010, Journal of biomedical materials research. Part A.
[38] Rosaire Mongrain,et al. Comparison of Mechanical Properties of aterials Used in Aortic Arch Reconstruction , 2022 .
[39] Wei Min Huang,et al. Effects of moisture on the thermomechanical properties of a polyurethane shape memory polymer , 2006 .
[40] M Navarro,et al. Biomaterials in orthopaedics , 2008, Journal of The Royal Society Interface.
[41] Matthew W. Miller,et al. Opacification of Shape Memory Polymer Foam Designed for Treatment of Intracranial Aneurysms , 2011, Annals of Biomedical Engineering.
[42] John A Jansen,et al. Bone cements and their potential use in a mandibular endoprosthesis. , 2009, Tissue engineering. Part B, Reviews.
[43] A. C. Taylor,et al. The fracture and fatigue behaviour of nano-modified epoxy polymers , 2007 .
[44] W. R. Taylor,et al. Effect of poly(ethylene glycol) diacrylate concentration on network properties and in vivo response of poly(β-amino ester) networks. , 2011, Journal of biomedical materials research. Part A.
[45] Ken Gall,et al. Effect of chemical structure and crosslinking density on the thermo-mechanical properties and toughness of (meth)acrylate shape-memory polymer networks , 2008 .
[46] K. Gall,et al. On the toughness of photopolymerizable (meth)acrylate networks for biomedical applications , 2009 .
[47] Wei Zhang,et al. Surprising shape-memory effect of polylactide resulted from toughening by polyamide elastomer , 2009 .
[48] T. Hatakeyama,et al. Relationship between hydrogen bonding and bound water in polyhydroxystyrene derivatives , 1983 .
[49] Ingrid A. Rousseau,et al. Facile tailoring of thermal transition temperatures of epoxy shape memory polymers , 2009 .
[50] C. Frank,et al. Water content alters viscoelastic behaviour of the normal adolescent rabbit medial collateral ligament. , 1992, Journal of biomechanics.
[51] B. Tighe,et al. Synthetic hydrogels: 1. Hydroxyalkyl acrylate and methacrylate copolymers - water binding studies , 1987 .
[52] Brent L. Volk,et al. Electron Beam Crosslinked Polyurethane Shape Memory Polymers with Tunable Mechanical Properties. , 2013, Macromolecular chemistry and physics.
[53] Alicia M. Ortega,et al. Strong, Tailored, Biocompatible Shape‐Memory Polymer Networks , 2008, Advanced functional materials.
[54] S. Kelch,et al. Synthesis, Shape‐Memory Functionality and Hydrolytical Degradation Studies on Polymer Networks from Poly(rac‐lactide)‐b‐poly(propylene oxide)‐b‐poly(rac‐lactide) dimethacrylates , 2006 .
[55] D. Maitland,et al. The effect of moisture absorption on the physical properties of polyurethane shape memory polymer foams , 2011, Smart materials & structures.
[56] R. Hertzberg,et al. The fracture toughness and fatigue crack propagation behaviour of annealed PET , 1993 .
[57] D. Safranski. POLY(BETA-AMINO ESTERS) FOR CARDIOVASCULAR APPLICATIONS , 2010 .
[58] A.M.S. Hamouda,et al. The influence of humidity on the deformation and fracture behaviour of PMMA , 2002 .
[59] J. Puskas,et al. Biomedical application of commercial polymers and novel polyisobutylene-based thermoplastic elastomers for soft tissue replacement. , 2004, Biomacromolecules.
[60] S. Kurtz,et al. PEEK biomaterials in trauma, orthopedic, and spinal implants. , 2007, Biomaterials.
[61] R Marks,et al. Evaluation of biomechanical properties of human skin. , 1995, Clinics in dermatology.
[62] Philippe Poitras,et al. Internal plate fixation of fractures: short history and recent developments , 2006, Journal of orthopaedic science : official journal of the Japanese Orthopaedic Association.
[63] Ken Gall,et al. The effect of the glass transition temperature on the toughness of photopolymerizable (meth)acrylate networks under physiological conditions. , 2009, Polymer.
[64] Yasuaki Seki,et al. Biological materials: a materials science approach. , 2011, Journal of the mechanical behavior of biomedical materials.
[65] Ken Gall,et al. Deformation Limits in Shape‐Memory Polymers , 2008 .
[66] H. Hamada,et al. The effect of crosslinking on the mechanical properties of polylactic acid/polycaprolactone blends , 2006 .
[67] P. Maiti,et al. Toughening of bone cement using nanoparticle: The effect of solvent , 2011 .
[68] Thermo-Mechanical Properties of Semi-Degradable Poly(β-amino ester)-co-Methyl Methacrylate Networks under Simulated Physiological Conditions. , 2011, Polymer.
[69] S. Ferguson,et al. The long-term mechanical integrity of non-reinforced PEEK-OPTIMA polymer for demanding spinal applications: experimental and finite-element analysis , 2005, European Spine Journal.
[70] J. Nyman,et al. A novel approach to assess post-yield energy dissipation of bone in tension. , 2007, Journal of Biomechanics.
[71] Joel L Berry,et al. Hemodynamics and wall mechanics of a compliance matching stent: in vitro and in vivo analysis. , 2002, Journal of vascular and interventional radiology : JVIR.
[72] Dong Zhu,et al. Micro-structure and mechanical properties of annulus fibrous of the L4-5 and L5-S1 intervertebral discs. , 2008, Clinical biomechanics.
[73] Patrick T. Mather,et al. Review of progress in shape-memory polymers , 2007 .
[74] Duncan Maitland,et al. Laser-activated shape memory polymer intravascular thrombectomy device. , 2005, Optics express.
[75] S. Kelch,et al. Amorphous, Elastic AB Copolymer Networks from Acrylates and Poly[(L‐lactide)‐ran‐glycolide]dimethacrylates , 2008 .
[76] A. Lendlein,et al. Evaluation of a degradable shape-memory polymer network as matrix for controlled drug release. , 2009, Journal of controlled release : official journal of the Controlled Release Society.
[77] K. Katti,et al. Biomaterials in total joint replacement. , 2004, Colloids and surfaces. B, Biointerfaces.
[78] Dawei Zhang,et al. PCL-based Shape Memory Polymers with Variable PDMS Soft Segment Lengths. , 2011, Journal of polymer science. Part A, Polymer chemistry.
[79] Melodie F Metzger,et al. Photothermal properties of shape memory polymer micro‐actuators for treating stroke * , 2002, Lasers in surgery and medicine.
[80] Marc Behl,et al. Shape-Memory Polymers for Biomedical Applications , 2008 .
[81] Q. Meng,et al. A review of shape memory polymer composites and blends , 2009 .
[82] D. Williams,et al. The Effect of Environmental Aging on the Fracture Toughness of Dental Composites , 1987, Journal of dental research.