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Guided learning journeys that build knowledge step by step.
category · Learning · slug · learning · 7817 Paths
7817 Paths · page 610 / 782
This learning path equips manufacturing professionals with a deep understanding of protective and functional coatings, covering corrosion-resistant, thermal barrier, anti-fouling, and self-cleaning systems, as well as thin-film deposition techniques. It integrates materials chemistry and surface chemistry principles to enable informed selection, application, and troubleshooting of coatings in industrial settings.
This advanced professional learning path equips environmental engineers with a deep understanding of materials used in purification, focusing on porous materials. It covers membrane filtration, adsorbents like activated carbon and MOFs, photocatalysts such as TiO₂, ion exchange, and disinfection, linking their chemistry to practical applications.
This learning path equips university students with an advanced understanding of sustainable materials, covering green chemistry principles, life cycle assessment, recycling of metals and polymers, biodegradable materials, and renewable resources. It integrates materials processing concepts to connect molecular design with real-world sustainability impacts.
This learning path guides students from foundational materials chemistry and mechanical properties through the principles and applications of key stimuli-responsive materials, including shape-memory alloys, piezoelectric materials, electrochromic materials, self-healing materials, and stimuli-responsive polymers.
This path explores the chemistry of porous materials, focusing on zeolites, metal-organic frameworks (MOFs), and mesoporous silicas. It covers synthesis, characterization (especially BET analysis), and applications in catalysis and gas storage, with an emphasis on surface chemistry principles.
This learning path introduces the fundamental materials chemistry concepts necessary to understand metals, polymers, and ceramics used in biomedical applications. It covers structure-property relationships, biocompatibility, and tissue engineering, providing a foundation for students interested in biomedical engineering.
This advanced path explores materials chemistry for energy harvesting, focusing on thermoelectric (Seebeck/Peltier) and piezoelectric/ferroelectric materials. It covers electronic properties, key material systems, and figures of merit, culminating in practical applications.
This learning path provides a foundational understanding of the materials chemistry and electronic properties underlying photovoltaic devices, progressing from fundamental semiconductor concepts to advanced device architectures. It covers silicon, thin-film, perovskite, organic, and tandem solar cells, emphasizing how material properties influence efficiency.
This advanced learning path covers the chemistry of semiconductor materials (Si, GaAs, GaN, SiC), including electronic properties, doping, junction formation, band gap engineering, and device fabrication. It is designed for university students interested in electronics and provides a systematic progression from fundamental concepts to processing techniques.
This learning path guides students through the principles, techniques, and applications of scanning electron microscopy (SEM) and transmission electron microscopy (TEM) for materials characterization. It covers essential imaging modes, analytical techniques such as EDX and EELS, diffraction, sample preparation, and applications to nanomaterials, building from fundamental concepts to advanced practice.