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Path Catalog
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This learning path guides undergraduate engineering students from basic thermodynamics and polymer structure to a working understanding of the glass transition in polymers. It covers free volume theory, factors affecting Tg, the Williams-Landel-Ferry (WLF) equation, and the mechanical property changes above and below Tg, emphasizing practical implications for polymer applications.
This learning path guides undergraduate engineering students through the fundamental concepts of polymer crystallinity and amorphousness, covering chain folding, lamellae, spherulites, degree of crystallinity, and their effects on material properties. It builds on basic polymer chemistry and emphasizes structure-property relationships.
This learning path guides high school students with basic math skills through the fundamental concepts of polymer molecular weight, including number-average and weight-average molecular weights, polydispersity, degree of polymerization, and molecular weight distribution. Starting with basic statistics, the path builds a clear understanding of how polymers are characterized by their molecular weight averages.
This learning path guides high school students with basic organic chemistry through the core concepts of polymer synthesis, focusing on the mechanisms of step-growth and chain-growth polymerization. Learners will explore the key differences, including monomer functionality, reaction kinetics, and molecular weight evolution, and will be introduced to living polymerization as an advanced extension. The path emphasizes conceptual understanding and comparison, preparing students for further studies in polymer science.
This learning path guides high school students with basic chemistry through the fundamental concepts of polymer classification. Starting with monomers and polymerization, it covers classification by origin, structure, and thermal behavior, including thermoplastics, thermosets, elastomers, crystalline vs. amorphous, and homopolymers vs. copolymers.
This learning path introduces high school students with basic chemistry knowledge to the fundamental chemical structures and bonding in polymers. Starting from atomic structure and chemical bonding, it progresses through organic functional groups, hydrocarbon backbones, heteroatoms, and polymer molecular architectures, culminating in an understanding of how these features determine polymer properties.
This learning path introduces high school students to the fundamental concepts of polymer materials, including definitions, classifications, and significance. It covers monomers, polymerization, natural versus synthetic polymers, and the historical development of polymers, building on basic chemistry knowledge.
This advanced graduate-level path equips learners with systematic research methodologies for ceramics and glass, covering problem formulation, literature review, experimental design, characterization, data interpretation, scientific communication, ethics, and reproducibility. It builds on foundational knowledge in ceramics and glass science and emphasizes rigorous, reproducible research practices.
This learning path guides graduate students and researchers from foundational laser-matter interaction principles to advanced applications of ultrafast lasers in glass modification, covering multiphoton absorption, refractive index changes, 3D waveguide writing, and micro-explosions. It integrates essential optics and glass science knowledge to build a comprehensive understanding.
This graduate-level learning path explores the composition, dissolution behavior, and biological responses of bioactive glasses, focusing on 45S5 Bioglass® and its applications in bone regeneration. It covers foundational ceramics and glass science, the mechanisms of apatite formation, osteogenic properties, and scaffold engineering, providing a comprehensive understanding for researchers.