The valence shell electron configuration for the given elements and the number of valence electrons for each element is to be determined. Concept Introduction: Valence shell is the outermost shell of an atom, only the electrons present in the valence shell participate in the chemical bonding. An element’s chemical properties can be determined by the valence electrons. The electron configuration of an atom contributes to their physical and chemical properties. It helps in the better understanding of the structure of an atom and the nature of the electrons contained within that atom. Three rules that should be followed to fill the atomic orbitals by electrons: Rule 1: The lowest energy orbitals fill first, filling pattern is 1s, 2s, 2p, 3s, 3p, 4s, 3d, 4p, 5s, 4d, 5p, 6s, 4f, 5d, 6p, 7s, 5f, 6d, 7p etc . The entire subshell of a particular orbital type filled before moving to the next subshell of higher energy. Rule 2: Pauli Exclusion Principle- Only two electrons of opposite spin are permitted per orbital. Rules 3: Hund’s Rule – The orbitals of the same energy are each filled with one electron of same spin before filling any with a second electron.
The valence shell electron configuration for the given elements and the number of valence electrons for each element is to be determined. Concept Introduction: Valence shell is the outermost shell of an atom, only the electrons present in the valence shell participate in the chemical bonding. An element’s chemical properties can be determined by the valence electrons. The electron configuration of an atom contributes to their physical and chemical properties. It helps in the better understanding of the structure of an atom and the nature of the electrons contained within that atom. Three rules that should be followed to fill the atomic orbitals by electrons: Rule 1: The lowest energy orbitals fill first, filling pattern is 1s, 2s, 2p, 3s, 3p, 4s, 3d, 4p, 5s, 4d, 5p, 6s, 4f, 5d, 6p, 7s, 5f, 6d, 7p etc . The entire subshell of a particular orbital type filled before moving to the next subshell of higher energy. Rule 2: Pauli Exclusion Principle- Only two electrons of opposite spin are permitted per orbital. Rules 3: Hund’s Rule – The orbitals of the same energy are each filled with one electron of same spin before filling any with a second electron.
Solution Summary: The author explains that the valence shell electron configuration for the given elements is to be determined.
Definition Definition Connection between particles in a compound. Chemical bonds are the forces that hold the particles of a compound together. The stability of a chemical compound greatly depends on the nature and strength of the chemical bonding present in it. As the strength of the chemical bonding increases the stability of the compound also increases.
Chapter 7, Problem 22PE
Interpretation Introduction
Interpretation:
The valence shell electron configuration for the given elements and the number of valence electrons for each element is to be determined.
Concept Introduction:
Valence shell is the outermost shell of an atom, only the electrons present in the valence shell participate in the chemical bonding.
An element’s chemical properties can be determined by the valence electrons.
The electron configuration of an atom contributes to their physical and chemical properties. It helps in the better understanding of the structure of an atom and the nature of the electrons contained within that atom.
Three rules that should be followed to fill the atomic orbitals by electrons:
Rule 1: The lowest energy orbitals fill first, filling pattern is 1s, 2s, 2p, 3s, 3p, 4s, 3d, 4p, 5s, 4d, 5p, 6s, 4f, 5d, 6p, 7s, 5f, 6d, 7p etc. The entire subshell of a particular orbital type filled before moving to the next subshell of higher energy.
Rule 2: Pauli Exclusion Principle- Only two electrons of opposite spin are permitted per orbital.
Rules 3: Hund’s Rule – The orbitals of the same energy are each filled with one electron of same spin before filling any with a second electron.
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Draw the major product of this reaction. Ignore inorganic byproducts.
CI
1. NaBH4
2. H₂O
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Problem
Atoms, Bonds
and Rings
Draw or tap a new bond to
2. Draw the remaining two resonance structures for the carbocation intermediate in the
meta nitration of methyl benzoate AND explain why the meta orientation is preferred.
Hint: how is the placement of the cation favorable after addition of nitronium relative to
the electron withdrawing group? (2 pts)
H NO2
CO₂Me