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Ch.9 - Molecular Geometry and Bonding Theories
Brown - Chemistry: The Central Science 14th Edition
Brown14th EditionChemistry: The Central ScienceISBN: 9780134414232당신이 사용하는 게 아니라요?교과서 변경
9장, 문제 29a

Give the approximate values for the indicated bond angles in the following molecules: (a)

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1
Identify the central atom in the molecule.
Determine the electron domain geometry around the central atom using the VSEPR theory, which considers both bonding and non-bonding electron pairs.
Count the number of bonding pairs and lone pairs around the central atom to predict the molecular geometry.
Use the molecular geometry to estimate the bond angles. For example, in a tetrahedral geometry, the bond angles are approximately 109.5 degrees.
Consider any deviations from ideal bond angles due to factors such as lone pairs or double bonds, which can affect the angles.

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주요 개념

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Bond Angles

Bond angles are the angles formed between two adjacent bonds at a central atom in a molecule. They are crucial for understanding molecular geometry and are influenced by the arrangement of electron pairs around the central atom, which can be affected by factors such as lone pairs and the type of bonds (single, double, or triple).
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VSEPR Theory

Valence Shell Electron Pair Repulsion (VSEPR) theory is a model used to predict the geometry of individual molecules based on the repulsion between electron pairs in the valence shell of the central atom. According to VSEPR, electron pairs will arrange themselves to minimize repulsion, leading to specific bond angles characteristic of different molecular shapes.
추천 영상:
가이드 코스
02:13
Molecular Shapes and VSEPR

Molecular Geometry

Molecular geometry refers to the three-dimensional arrangement of atoms within a molecule. It is determined by the number of bonding pairs and lone pairs of electrons around the central atom, which influences the bond angles. Common geometries include linear, trigonal planar, tetrahedral, and octahedral, each with specific bond angle values.
추천 영상:
가이드 코스
01:33
Molecular Geometry with Two Electron Groups