Preparing your Path…
Preparing your Path…
Path Catalog
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7801 Paths · page 262 / 781
This learning path equips undergraduate engineering students with the core knowledge of polymer engineering, covering polymer synthesis, rheology, and key processing techniques such as extrusion and injection molding. It emphasizes the differences between thermosets and thermoplastics and their practical applications, building on foundational chemistry and materials science.
This learning path equips undergraduate engineering students with the knowledge to design and process ceramic and glass materials for specific applications. It covers the fundamental structure-property relationships, key processing techniques such as sintering and glass formation, and the selection of materials for industrial applications. The path builds from basic materials science concepts through to applied engineering decisions.
This learning path guides undergraduate engineering students from foundational materials science through the principles and practices of extractive metallurgy, physical metallurgy, and common metal processing techniques. It emphasizes the role of phase diagrams and microstructure in understanding and controlling metal properties, preparing learners for careers in metals production and manufacturing.
This learning path guides undergraduate engineering students through the fundamental materials science concepts and applications in water treatment. It covers membranes, adsorbents, catalysts, and disinfection materials, emphasizing the underlying chemistry and material properties that determine performance.
This learning path provides a systematic introduction to materials used in solar cells, batteries, and fuel cells. It covers fundamental electrical and chemical properties, then explores specific material classes for photovoltaics, battery electrodes/electrolytes, and hydrogen storage, with emphasis on structure-property-performance relationships.
This learning path equips undergraduate engineering students with the knowledge and skills to evaluate materials and processes from a sustainability perspective. It covers life cycle assessment, recycled and bio-based materials, energy efficiency, and circular economy principles, building on basic materials processing knowledge.
This advanced graduate path equips learners with the fundamental and applied knowledge to analyze materials for extreme environments, focusing on refractory metals, ceramics, composites, oxidation resistance, nuclear applications, and thermal management. It systematically builds from thermodynamics and mechanical behavior to radiation effects and material selection, culminating in a capstone case study.
This learning path equips undergraduate engineering students with the knowledge and skills to assess materials used in implants and medical devices. It covers fundamental materials science and biology prerequisites, then explores metallic, ceramic, and polymeric biomaterials, biocompatibility, osseointegration, and drug delivery systems. The path culminates in a practical assessment framework for selecting appropriate biomaterials.
A systematic learning path for undergraduate engineering students to understand nanomaterials. It covers size-dependent properties, top-down and bottom-up synthesis methods, and key nanomaterials like carbon nanotubes, graphene, and quantum dots, along with their applications.
This learning path provides undergraduate engineering students with a systematic understanding of materials used in semiconductor and electronic devices. It covers fundamental electrical properties, key semiconducting materials (silicon, germanium, gallium arsenide), dielectrics, conductors, and packaging materials, emphasizing their roles and interconnections in device applications.