Linked from
The 94 pages that link to Molecular geometry, each with the reason it gives.
Ball-and-stick modelRelated: The model’s spatial layout displays molecular shape and bond angles.
Space-filling modelRelated: Geometry determines how the scaled atomic spheres overlap in the model.
DimethylamineRelated: Nitrogen’s bonded atoms and lone pair give dimethylamine a pyramidal shape.
IsobutaneNarrower topic: The tetrahedral geometry around carbon shapes isobutane’s structure.
Xenon trioxideNarrower topic: XeO₃ has a trigonal-pyramidal shape because xenon carries a lone pair.
Hydrogen selenideRelated: H₂Se has a bent molecular shape rather than a linear one.
Isocyanic acidRelated: The nearly linear N=C=O framework is central to describing HNCO's structure.
Methyl isocyanateRelated: The structure of CH₃NCO helps explain its bonding and chemical behavior.
AllotropeRelated: Elements such as oxygen form allotropes with different molecular structures.
Allotropes of oxygenRelated: O₂ is diatomic, while O₃ has a bent molecular shape.
Chemical polarityRelated: Geometry determines whether individual bond dipoles reinforce or cancel.
IodoformRelated: Its tetrahedral carbon is bonded to one hydrogen and three iodine atoms.
Kathleen LonsdaleRelated: The planar form of benzene is a specific result about molecular geometry.
Tin(IV) chlorideRelated: Four chlorine atoms surround tin in a tetrahedral arrangement.
Xenon tetroxideRelated: XeO₄ has a tetrahedral arrangement around xenon.
Conformation & topologyNarrower topic: These geometric variables specify molecular conformations.
DiacetyleneRelated: The sp-hybridized carbon chain gives diacetylene a linear molecular framework.
Pnictogen hydrideRelated: Lone pairs on the pnictogen shape the molecules’ pyramidal structures.