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Guided learning journeys that build knowledge step by step.
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7818 Paths · page 641 / 782
This learning path provides an advanced understanding of homogeneous and heterogeneous catalysis, focusing on organometallic and coordination chemistry principles. It covers catalytic cycles, key industrial processes, and the design of solid catalysts such as zeolites and supported metals, culminating in a comparative analysis of both catalysis types.
This learning path equips students with a solid understanding of key analytical techniques used for inorganic materials characterization. Starting from fundamental concepts in solid-state chemistry, it systematically covers XRD, thermal analysis, electron microscopy, surface area measurement, elemental analysis, and surface spectroscopy, emphasizing their principles, applications, and complementary roles.
This learning path equips students with the knowledge and practical skills to apply computational tools—primarily DFT—to study inorganic molecules, with a focus on coordination complexes. It bridges fundamental quantum chemistry, basis set theory, and practical workflows for geometry optimization, frequency analysis, and bonding analysis via NBO and molecular orbital visualization.
This path systematically covers Lewis acid-base theory and the hard-soft acid-base (HSAB) principle, from foundational concepts to advanced applications in inorganic chemistry. Learners will explore the classification of acids and bases, predict stability of complexes, and apply HSAB to catalysis and extraction.
A comprehensive path covering symmetry elements, point groups, character tables, and their applications to vibrational spectroscopy and molecular orbital theory for polyatomic molecules.
A systematic learning path for materials chemistry students to understand the structure of crystalline solids, from unit cells and Bravais lattices to ionic crystal structures, packing efficiency, and crystal defects including non-stoichiometry.
This advanced learning path systematically explores the roles of essential metal ions in biological systems, integrating coordination chemistry principles with biochemical functions. It covers metal ion properties, metalloproteins, electron transfer, oxygen transport, and metalloenzymes, providing a comprehensive foundation for students interested in bioinorganic chemistry.
A comprehensive learning path covering the fundamental concepts and mechanisms of ligand substitution, electron transfer, and photochemical reactions in coordination compounds. Designed for university students studying inorganic kinetics, this path progresses from foundational coordination chemistry through advanced mechanistic and photochemical principles.
This advanced learning path guides students through the relationship between electron configuration and magnetic behavior in transition metal complexes. It covers fundamental concepts of magnetism, crystal field theory, and orbital contributions, culminating in applications like spin-crossover and magnetic measurements.
This advanced learning path guides students through the theoretical foundations and practical skills needed to interpret UV-Vis spectra of transition metal complexes. It covers crystal field theory, ligand field theory, Tanabe-Sugano diagrams, selection rules, and spectral features such as d-d transitions and charge-transfer bands, culminating in hands-on spectral analysis.