Foreword | p. xiii |
Preface | p. xv |
About the Author | p. xix |
Introduction to Polymer Blends | p. 1 |
Learning Objectives | p. 1 |
History of Polymer Blends | p. 2 |
Flory-Huggin's Solution Theory-and Beyond | p. 4 |
Miscible Polymer Blends | p. 7 |
Partially Miscible Polymer Blends | p. 8 |
Natural Polymers | p. 9 |
Primary Structure | p. 10 |
Secondary Structure | p. 11 |
Tertiary Structure | p. 12 |
Quaternary Structure | p. 13 |
Polymer Alloys | p. 16 |
Summary | p. 18 |
Exercises | p. 20 |
References | p. 21 |
Equation of State Theories for Polymers | p. 23 |
Learning Objectives | p. 23 |
Small Molecules and Large Molecules | p. 23 |
Kinetic Representation of Pressure | p. 24 |
Derivation of Ideal Gas Law | p. 25 |
Van der Waals Cubic Equation of State | p. 27 |
Virial Equation of State | p. 28 |
Redlich and Kwong Equation of State and Soave Modification | p. 28 |
PVT Relations for Polymeric Liquids | p. 30 |
Tait Equation | p. 30 |
Flory, Orwoll, and VRIJ (FOV) Model | p. 32 |
Prigogine Square-Well Cell Model | p. 35 |
Lattice Fluid Model of Sanchez and Lacombe | p. 37 |
Negative Coefficient of Thermal Expansion | p. 44 |
Historical Note | p. 45 |
Violation of Second Law of Thermodynamics | p. 46 |
Proposed Isentropic Expansivity | p. 47 |
Measurements of Volume Expansivity Not Isobaric | p. 49 |
Summary | p. 49 |
Problems | p. 50 |
Review Questions | p. 54 |
References | p. 55 |
Binary Interaction Model | p. 57 |
Learning Objectives | p. 57 |
Introduction | p. 57 |
Compositional Window of Miscibility: Copolymer-Homopolymer | p. 59 |
Compositional Window of Miscibility: Copolymers with Common Monomers | p. 60 |
Compositional Window of Miscibility: Terpolymer System with Common Monomers | p. 62 |
Compositional Window of Miscibility: Terpolymer and Homopolymer System without Common Monomers | p. 64 |
Spinodal Curve from B Values and EOS | p. 65 |
Copolymer/Homopolymer Blends of AMS-AN/PVC | p. 67 |
Copolymer/Homopolymer Blends of AMS-AN with Other Copolymers | p. 68 |
Intramolecular Repulsion as Driving Force for Miscibility-Mean Field Approach | p. 75 |
Summary | p. 80 |
Exercises | p. 81 |
Problems | p. 82 |
References | p. 85 |
Keesom Forces and Group Solubility Parameter Approach | p. 87 |
Learning Objectives | p. 87 |
Hildebrandt Solubility Parameter | p. 87 |
Hansen Three-Dimensional Solubility Parameter | p. 89 |
Specific Interactions | p. 89 |
Experimental Determination of Equilibrium Rate Constants | p. 94 |
Phase Behavior of Miscible Blends with Keesom Interactions | p. 95 |
Summary | p. 98 |
Exercises | p. 99 |
Review Questions | p. 103 |
References | p. 104 |
Phase Behavior | p. 105 |
Learning Objectives | p. 105 |
Introduction | p. 105 |
LCST and UCST | p. 108 |
Case I LCST | p. 108 |
Case II UCST | p. 108 |
Circular Envelope in Phase Diagram | p. 110 |
Case III Circular Phase Envelope UCST and LCST | p. 110 |
Case IV Circular Phase Envelope LCST and UCST | p. 110 |
Hourglass Behavior in Phase Diagrams | p. 114 |
Case V LCST and UCST Hourglass Behavior | p. 114 |
Molecular Architecture | p. 116 |
Summary | p. 119 |
Exercises | p. 120 |
Problems | p. 121 |
References | p. 122 |
Partially Miscible Blends | p. 123 |
Learning Objectives | p. 123 |
Commercial Blends That Are Partially Miscible | p. 124 |
Entropy Difference Model (Sm | p. 124 |
Estimates of Change in Entropy of Mixing at Glass Transition, Sm | p. 129 |
Copolymer and Homopolymer Blend | p. 131 |
Sequence Distribution Effects on Miscibility | p. 134 |
Summary | p. 137 |
Nomenclature | p. 138 |
Subscripts | p. 139 |
Superscripts | p. 139 |
Greek | p. 139 |
Exercises | p. 139 |
References | p. 140 |
Polymer Nanocomposites | p. 143 |
Learning Objectives | p. 143 |
Introduction | p. 143 |
Commercial Products | p. 143 |
Thermodynamic Stability | p. 144 |
Vision and Realities | p. 145 |
Fullerenes | p. 145 |
Carbon Nanotubes (CNTs) | p. 147 |
Morphology of CNTs | p. 148 |
Nanostructuring Operations | p. 151 |
Polymer Thin Films | p. 153 |
Nanostructuring from Self-Assembly of Block Copolymers | p. 154 |
Intercalated and Exfoliated Nanocomposites | p. 155 |
Summary | p. 162 |
Exercises | p. 163 |
References | p. 165 |
Polymer Alloys | p. 167 |
Learning Objectives | p. 167 |
Introduction | p. 167 |
PC/ABS Alloys | p. 168 |
Nylon/ABS Alloys | p. 170 |
PVC Alloys | p. 171 |
Polyolefin Alloys | p. 173 |
Natural Polymer Alloy | p. 174 |
Summary | p. 176 |
Exercises | p. 177 |
References | p. 177 |
Binary Diffusion in Polymer Blends | p. 179 |
Learning Objectives | p. 179 |
Introduction | p. 179 |
Diffusion Phenomena | p. 180 |
Fick's First and Second Laws of Diffusion | p. 181 |
Skylab Diffusion Demonstration Experiments | p. 183 |
Bulk Motion, Molecular Motion, and Total Molar Flux | p. 184 |
Stokes-Einstein Equation for Dilute Solutions | p. 186 |
Diffusion in Concentrated Solutions | p. 190 |
Diffusion in Solids | p. 191 |
Mechanisms of Diffusion | p. 191 |
Diffusion in Porous Solids | p. 193 |
Diffusion Coefficients in Polymers | p. 194 |
Transient Diffusion | p. 195 |
Fick Molecular Diffusion-Semi-Infinite Medium | p. 196 |
Damped Wave Diffusion and Relaxation | p. 198 |
Periodic Boundary Condition | p. 205 |
Summary | p. 208 |
Problems | p. 209 |
Review Questions | p. 215 |
References | p. 216 |
Copolymer Composition | p. 219 |
Learning Objectives | p. 219 |
Introduction | p. 219 |
Composition for Random Copolymers | p. 221 |
Composition of Random Terpolymers | p. 224 |
Reactivity Ratios | p. 227 |
Multicomponent Copolymerization-n Monomers | p. 229 |
Summary | p. 239 |
Problems | p. 239 |
Review Questions | p. 240 |
References | p. 241 |
Sequence Distribution of Copolymers | p. 243 |
Learning Objectives | p. 243 |
Dyad and Triad Probabilities in Copolymer | p. 243 |
Dyad and Triad Probabilities in Terpolymers | p. 249 |
Sequence Alignment in DNA and Protein Sequences | p. 259 |
Global Alignment of a Pair of Sequences | p. 261 |
Algorithm 1 Global Alignment | p. 262 |
Dynamic Programming | p. 265 |
Analysis of Time and Space Efficiency | p. 266 |
O(n) Space Solution by Dynamic Array | p. 266 |
Subquadratic Algorithms for Longest Common Subsequence | p. 266 |
Algorithm 2: Length of Longest Increasing Subsequence | p. 267 |
Algorithm 3: Find and Print the Longest Common Subsequence of S and T | p. 267 |
Greedy Algorithms for Pairwise Alignment | p. 268 |
Algorithm 4: Tool for Aligning Very Similar DNA Sequences | p. 269 |
Other Methods for Pairwise Alignment | p. 271 |
Grading Functions during Global Alignment | p. 271 |
Summary | p. 274 |
Problems | p. 275 |
Review Questions | p. 282 |
References | p. 283 |
Reversible Polymerization | p. 285 |
Learning Objectives | p. 285 |
Heat Effects during Polymerization | p. 286 |
Ceiling Temperature during Reversible Polymerization | p. 290 |
Subcritical Oscillations during Thermal Polymerization | p. 294 |
Thermal Initiation by Diels-Alder Dimerization | p. 295 |
Four Reactions in a Circle | p. 299 |
General Case of n Reactions in Circle | p. 300 |
Thermal Terpolymerization of Alphamethyl-Styrene, Acrylonitrile, and Styrene | p. 300 |
Experimental | p. 301 |
Results | p. 302 |
Reversible Copolymerization | p. 304 |
Copolymer Composition | p. 304 |
Heat of Copolymerization | p. 308 |
Summary | p. 309 |
Problems | p. 311 |
Review Questions | p. 313 |
References | p. 313 |
Maxwell's Relations | p. 315 |
Five Laws of Thermodynamics | p. 319 |
Glass Transition Temperature | p. 331 |
Statistical Distributions | p. 335 |
Index | p. 343 |
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