Organic Chemistry: Principles And Mechanisms: Study Guide/solutions Manual (second)
Organic Chemistry: Principles And Mechanisms: Study Guide/solutions Manual (second)
2nd Edition
ISBN: 9780393655551
Author: KARTY, Joel
Publisher: W. W. Norton & Company
bartleby

Concept explainers

bartleby

Videos

Question
Book Icon
Chapter 1, Problem 1.52P
Interpretation Introduction

(a)

Interpretation:

For the given skeleton of an anion having the overall formula C6H6NO, a complete Lewis structure is to be drawn in which -1 formal charge is on N. All H atoms and valence electrons are to be included.

Concept introduction:

Lewis structure takes into account only the valence electrons. In the Lewis structure, each single line represents a shared pair of electrons, that is, a bonding pair of electrons. Nonbonding electrons are indicated by dots and are usually paired (:). The number of valence electrons contributed by each atom is the same as the group number. For an anion, each negative charge increases the number of valence electrons by one. In a molecule or polyatomic ion, the charge of an individual atom is determined by the difference between the atoms group number and the actual valence electrons it possesses. For the atoms involved in covalent bonds, the formal charge is determined by assigning both electrons of a lone pair to the atom on which they appear while half the electrons are assigned to each atom involved in the bond.

Interpretation Introduction

(b)

Interpretation:

For the given skeleton of an anion having the overall formula C6H6NO, a complete Lewis structure is to be drawn in which -1 formal charge is on O. All H atoms and valence electrons are to be included.

Concept introduction:

In the Lewis structure each bond represents a shared pair of electrons and the non-bonding electrons are shown by dots. In a molecule or polyatomic ion, charge to an individual atom is determined by the difference between the atoms group number and the actual valence electrons it possesses. For the atoms involved in covalent bonds, the formal charge is determined by assigning both electrons of a lone pair to the atom on which they appear, and half the electrons are assigned to each atom involved in the bond.

Interpretation Introduction

(c)

Interpretation:

For the given skeleton of an anion having the overall formula C6H6NO, a complete Lewis structure is to be drawn in which -1 formal charge is on C atom that is bonded to three other C atoms. All H atoms and valence electrons are to be included.

Concept introduction:

In the Lewis structure each bond represents a shared pair of electrons and the non-bonding electrons are shown by dots. In a molecule or polyatomic ion, charge to an individual atom is determined by the difference between the atoms group number and the actual valence electrons it possesses. For the atoms involved in covalent bonds, the formal charge is determined by assigning both electrons of a lone pair to the atom on which they appear, and half the electrons are assigned to each atom involved in the bond.

Blurred answer
Students have asked these similar questions
A Standard Reference Material is certified to contain 94.6 ppm of an organic contaminant in soil. Your analysis gives values of 98.6, 98.4, 97.2, 94.6, and 96.2. Do your results differ from the expected results at the 95% confidence interval?
The percentage of an additive in gasoline was measured six times with the following results: 0.13, 0.12, 0.16, 0.17, 0.20, and 0.11%. Find the 95% confidence interval for the percentage of additive.
Explain why this data led Rayleigh to look for and to discover Ar.

Chapter 1 Solutions

Organic Chemistry: Principles And Mechanisms: Study Guide/solutions Manual (second)

Ch. 1 - Prob. 1.11PCh. 1 - Prob. 1.12PCh. 1 - Prob. 1.13PCh. 1 - Prob. 1.14PCh. 1 - Prob. 1.15PCh. 1 - Prob. 1.16PCh. 1 - Prob. 1.17PCh. 1 - Prob. 1.18PCh. 1 - Prob. 1.19PCh. 1 - Prob. 1.20PCh. 1 - Prob. 1.21PCh. 1 - Prob. 1.22PCh. 1 - Prob. 1.23PCh. 1 - Prob. 1.24PCh. 1 - Prob. 1.25PCh. 1 - Prob. 1.26PCh. 1 - Prob. 1.27PCh. 1 - Prob. 1.28PCh. 1 - Prob. 1.29PCh. 1 - Prob. 1.30PCh. 1 - Prob. 1.31PCh. 1 - Prob. 1.32PCh. 1 - Prob. 1.33PCh. 1 - Prob. 1.34PCh. 1 - Prob. 1.35PCh. 1 - Prob. 1.36PCh. 1 - Prob. 1.37PCh. 1 - Prob. 1.38PCh. 1 - Prob. 1.39PCh. 1 - Prob. 1.40PCh. 1 - Prob. 1.41PCh. 1 - Prob. 1.42PCh. 1 - Prob. 1.43PCh. 1 - Prob. 1.44PCh. 1 - Prob. 1.45PCh. 1 - Prob. 1.46PCh. 1 - Prob. 1.47PCh. 1 - Prob. 1.48PCh. 1 - Prob. 1.49PCh. 1 - Prob. 1.50PCh. 1 - Prob. 1.51PCh. 1 - Prob. 1.52PCh. 1 - Prob. 1.53PCh. 1 - Prob. 1.54PCh. 1 - Prob. 1.55PCh. 1 - Prob. 1.56PCh. 1 - Prob. 1.57PCh. 1 - Prob. 1.58PCh. 1 - Prob. 1.59PCh. 1 - Prob. 1.60PCh. 1 - Prob. 1.61PCh. 1 - Prob. 1.62PCh. 1 - Prob. 1.63PCh. 1 - Prob. 1.64PCh. 1 - Prob. 1.65PCh. 1 - Prob. 1.66PCh. 1 - Prob. 1.67PCh. 1 - Prob. 1.68PCh. 1 - Prob. 1.69PCh. 1 - Prob. 1.70PCh. 1 - Prob. 1.71PCh. 1 - Prob. 1.72PCh. 1 - Prob. 1.73PCh. 1 - Prob. 1.74PCh. 1 - Prob. 1.75PCh. 1 - Prob. 1.76PCh. 1 - Prob. 1.77PCh. 1 - Prob. 1.78PCh. 1 - Prob. 1.79PCh. 1 - Prob. 1.80PCh. 1 - Prob. 1.81PCh. 1 - Prob. 1.82PCh. 1 - Prob. 1.1YTCh. 1 - Prob. 1.2YTCh. 1 - Prob. 1.3YTCh. 1 - Prob. 1.4YTCh. 1 - Prob. 1.5YTCh. 1 - Prob. 1.6YTCh. 1 - Prob. 1.7YTCh. 1 - Prob. 1.8YTCh. 1 - Prob. 1.9YTCh. 1 - Prob. 1.10YTCh. 1 - Prob. 1.11YTCh. 1 - Prob. 1.12YTCh. 1 - Prob. 1.13YTCh. 1 - Prob. 1.14YTCh. 1 - Prob. 1.15YTCh. 1 - Prob. 1.16YTCh. 1 - Prob. 1.17YT
Knowledge Booster
Background pattern image
Chemistry
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Stoichiometry - Chemistry for Massive Creatures: Crash Course Chemistry #6; Author: Crash Course;https://www.youtube.com/watch?v=UL1jmJaUkaQ;License: Standard YouTube License, CC-BY
Bonding (Ionic, Covalent & Metallic) - GCSE Chemistry; Author: Science Shorts;https://www.youtube.com/watch?v=p9MA6Od-zBA;License: Standard YouTube License, CC-BY
General Chemistry 1A. Lecture 12. Two Theories of Bonding.; Author: UCI Open;https://www.youtube.com/watch?v=dLTlL9Z1bh0;License: CC-BY