Course Outline
1
1. Crystal Field Theory: Understanding the splitting of d-orbitals in transition metal complexes and its impact on color and magnetism.
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2
2. Ligand Field Theory: Introduction to the principles of ligand interactions and their influence on electronic configuration.
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3
3. Coordination Number and Geometry: Exploration of different coordination numbers and the resulting geometries in coordination compounds.
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4
4. Reaction Mechanisms in Coordination Chemistry: Insight into substitution and redox mechanisms in coordination complexes.
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5
5. Spectroscopic Techniques: Application of UV-Vis, IR, and NMR spectroscopy to analyze coordination complexes and their properties.
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6
6. Metal-Ligand Bonding: Detailed examination of covalent vs. ionic character in metal-ligand interactions.
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7
7. Chelation and Stability: The role of chelating ligands in enhancing the stability of metal complexes and their applications in medicine.
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8
8. Applications in Catalysis: Case studies of specific transition metal catalysts in industrial and biochemical reactions.
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9
9. Coordination Compounds in Material Science: Understanding how coordination compounds are used in the development of new materials.
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10
10. Green Chemistry and Coordination Compounds: Investigating environmentally friendly approaches using coordination chemistry in sustainable practices.
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