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A brief explanation of the differences between Ammonia (NH3) and the Ammonium Ion (NH4+) including Lewis structures, molecular geometry, and bond angles. In comparing and contrasting Ammonia and the Ammonium ion: • Ammonia is a strong smelling substance. The Ammonium ion has no odor. • Both Ammonia and the Ammonium ion have eight valence electrons. • Ammonia has a trigonal pyramidal molecular geometry. This is because of the lone pair of electrons. • The Ammonium ion has a tetrahedral molecular geometry since it has four single bonds to the H atoms and no lone pairs. • Ammonia (NH3) is a single molecule. The Ammonium ion (NH4+) exists bonded to other atoms, like Cl in the compound NH4Cl, or surrounded by water molecules when dissolved in water. Resources for the Ammonia (NH3): Lewis Structure: • NH3 Lewis Structure - How to Draw the... Molecular Geometry and Bond Angles: • NH3 Molecular Geometry / Shape and Bo... Hybridization: • NH3 Hybridization: Hybrid Orbitals fo... Formal Charge: • Calculating NH3 Formal Charges: Calcu... Resources for the Ammonium Ion (NH4+): Lewis Structure: • Lewis Dot Structure for the Ammonium Ion Molecular Geometry and Bond Angles: • NH4+ Molecular Geometry / Shape and B... Hybridization: • Hybridization for NH4+ (description o... Formal Charge: • How to Calculate the Formal Charges f... Other Resources: Drawing Lewis Structures: • How to Draw Lewis Structures: Five Ea... For more practice, see • Lewis Dot Structure Practice Problems... Finding Valence Electrons: • Finding the Number of Valence Electro...