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Path Catalog
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This learning path guides undergraduate engineering students from foundational optics through the physical mechanisms of transparency, refractive index, dispersion, and their applications in optical fibers, laser glasses, and phosphors. It emphasizes the materials science behind transparent ceramics and glasses, linking optical phenomena to structural and compositional factors.
This learning path guides undergraduate engineering students through the fundamental physics and chemistry underlying the functional properties of electronic ceramics, including piezoelectrics, ferroelectrics, thermistors, varistors, and dielectric resonators. Starting with atomic structure and bonding, it progresses through crystallography, dielectric and ferroelectric behavior, and concludes with specific applications and characterization techniques.
A systematic learning path covering the fundamentals of bioceramics, their classification, and their use in medical implants. It bridges basic biology and materials science to provide a comprehensive understanding of bioinert, bioactive, and resorbable ceramics.
This learning path equips undergraduate engineering students with the knowledge to evaluate structural ceramics. It covers the fundamental mechanical properties, key ceramic materials (alumina, zirconia, silicon nitride, silicon carbide), and their applications in demanding environments such as hot sections.
This learning path guides undergraduate engineering students through the fundamental raw materials and processing steps of traditional ceramics. It covers clay minerals, silica, and feldspar, and explains how these materials are transformed into porcelain, earthenware, stoneware, glazes, and structural products like brick and tile.
This learning path provides undergraduate engineering students with a systematic understanding of glass viscosity and its critical role in thermal processing. Starting from glass structure fundamentals, it covers the viscosity-temperature relationship, key reference points, and the science behind annealing and tempering processes.
This learning path provides a systematic introduction to the fundamental driving forces and mechanisms of sintering, tailored for undergraduate engineering students. It covers surface energy reduction, diffusion mechanisms, densification, grain growth, and liquid phase sintering, building from foundational thermodynamics and diffusion concepts.
This learning path guides undergraduate engineering students through the essential steps of ceramic processing, from powder synthesis to final sintering. It builds a systematic understanding of how raw materials are transformed into functional ceramic components, emphasizing the underlying physics and chemistry at each stage.
This learning path guides undergraduate engineering students through the electrical behavior of ceramics, covering fundamental physics, dielectric properties, functional phenomena like piezoelectricity and ferroelectricity, and specialized applications such as varistors and superconductors. It builds from basic concepts of atomic structure and bonding to advanced topics, ensuring a comprehensive understanding.
This learning path guides undergraduate engineering students through the thermal behavior of ceramics, covering thermal expansion, thermal conductivity, thermal shock resistance, and refractory applications. It begins with fundamental thermodynamics and progresses to material-specific phenomena and engineering implications.