Course Objective(s):
This course will enable the students to -
Course Outcomes (COs):
Course Outcomes |
Teaching learning strategies |
Assessment Strategies |
On completion of this course, the students will be able to- CO129: describe LCAO concept and construct MO diagram of triatomic molecules and different types of complexes (octahedral, tetrahedral and square planar). CO130: explain thermodynamic with kinetic stability and compare between inert and labile complexes. CO131: Discuss SN2 mechanism in square planar complexes and apply the concept of trans effect to identify the cis and trans isomers. CO132: define, classify and name various organometallic compounds. Calculate valence electron count (18-electron). Discuss the preparation, properties, bonding and applications of organometallic compounds of some simple metals. CO133: develop a general idea of catalysis and describe in detail the mechanism of various homogeneous and heterogeneous organometallic catalysts. CO134: interpret the structure and bonding involved in metal carbonyls and metal nitrosyls. |
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Pre-requisite: LCAO approximation in diatomic molecules Molecular orbital theory in triatomic molecules- concept of ligand group orbitals, MO diagram of H2O and BeH2, Walsh diagrams, sigma molecular orbital theory in octahedral, tetrahedral, square planar complexes (qualitative pictorial approach)
Thermodynamic and kinetic stability of metal complexes, labile and inert complexes, factors affecting the stability of complexes, ligand substitution reactions- patterns of reactivity, classification of mechanisms, energy profile of reaction transition states, mechanism of substitution reactions (acid hydrolysis) in octahedral complexes, mechanism of ligand substitution reactions in square-planar complexes, the trans-effect, theories and its uses.
Definition, nomenclature, classification of organometallic compounds, hapticity(η) of organometallic ligands, 18-electron rule.
Preparation, properties, structure, bonding and applications of alkyls and aryls of Li, Al, Hg, Sn and Ti (η1)
Structure and bonding in metal ethylenic complex (Zeise’s salt) and metal cyclopentadienyl complex (Ferrocene)
Principle and important reactions of transition metal organometallics - coordinative unsaturation, oxidative addition and insertion reactions.
Homogeneous catalysis- hydrogenation of alkenes, hydrosilylation of alkenes, oligomerization and polymerization of alkenes and alkynes and hydroformylation of alkenes.
Heterogenous catalysis - Fisher-Tropsch synthesis, water-gas shift reaction
Metal carbonyls- introduction to acceptor ligands, classification of metal carbonyls, general methods of preparation, properties, structure and nature of bonding in mononuclear metal carbonyls (synergic effect), carbonylate anions and its reactions.
Metal nitrosyls - general methods of preparation, properties, structure and nature of bonding in metal nitrosyls.
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