Trigonal Bipyramidal

Trigonal bipyramidal is a molecular geometry in which a central atom is surrounded by five bonding groups arranged in three equatorial positions and two axial positions. This shape arises from electron-pair repulsion: equatorial bonds form approximately 120° angles with one another, while axial bonds lie at 90° to the equatorial plane and 180° to each other. The geometry is predicted using valence-shell electron-pair repulsion theory and commonly occurs in compounds such as phosphorus pentafluoride. Understanding trigonal bipyramidal structures helps chemists relate molecular shape to bond angles, polarity, reactivity, and ligand rearrangements, including changes caused by lone pairs or unequal substituents.

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JoVE Core - Chemistry

VSEPR Theory and the Basic Shapes

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2020

Overview of VSEPR Theory Valence shell electron-pair repulsion theory (VSEPR theory) enables us to predict the molecular structure, including approximate bond angles around a central atom, of a molecule from an examination of the number of bonds and lone electron pairs in its Lewis structure. The VSEPR model assumes that electron pairs in the valence shell of a central atom will adopt an arrangement that minimizes repulsions between these electron pairs by maximizing the distance between them.

VSEPR Theory and the Effect of Lone Pairs

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2020

Effect of Lone Pairs of Electrons on Molecule Geometry It is important to note that electron-pair geometry around a central atom is not the same thing as its molecular structure. Molecular structure describes the location of the atoms, not the electrons. The geometry that includes all electron pairs is the electron-pair geometry. The electron-pair geometries describe all regions where electrons are located, bonds as well as lone pairs. The structure that includes only the placement of the...

Hybridization of Atomic Orbitals II

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2020

sp3d and sp3d 2 Hybridization To describe the five bonding orbitals in a trigonal bipyramidal arrangement, we must use five of the valence shell atomic orbitals (the s orbital, the three p orbitals, and one of the d orbitals), which gives five sp3d hybrid orbitals. With an octahedral arrangement of six hybrid orbitals, we must use six valence shell atomic orbitals (the s orbital, the three p orbitals, and two of the d orbitals in its valence shell), which gives six sp3d 2 hybrid orbitals.

Predicting Molecular Geometry

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2020

VSEPR Theory for Determination of Electron Pair Geometries The following procedure uses VSEPR theory to determine the electron pair geometries and the molecular structures: Write the Lewis structure of the molecule or polyatomic ion. Count the number of electron groups (lone pairs and bonds) around the central atom. A single, double, or triple bond counts as one region of electron density. Identify the electron-pair geometry based on the number of electron groups: linear, trigonal planar,...

Molecular Shape and Polarity

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2020

Dipole Moment of a Molecule Polar covalent bonds connect two atoms with differing electronegativities, leaving one atom with a partial positive charge (δ+) and the other atom with a partial negative charge (δ–), as the electrons are pulled toward the more electronegative atom. This separation of charge gives rise to a bond dipole moment. The magnitude of a bond dipole moment is represented by the Greek letter mu (µ) and is given by the formula shown here, where Q is the magnitude of the...

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