Chemistry: Atoms First
Chemistry: Atoms First
2nd Edition
ISBN: 9780073511184
Author: Julia Burdge, Jason Overby Professor
Publisher: McGraw-Hill Education
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Chapter 6, Problem 6.92QP

Nitrogen dioxide (NO2) is a stable compound. Explain why there is a tendency for two such molecules to combine to form dinitrogen tetroxide (N2O4). Draw four resonance structures of N2O4, showing formal charges.

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The resonance structure of N2O4 should be drawn. The tendency for two NO2 molecules to combine to form dinitrogen tetroxide should be explained

Concept Introduction:

  • Sometimes the chemical bonding of a molecule cannot be represented using a single Lewis structure. In these cases, the chemical bonding are described by delocalization of electrons and is known as resonance.
  • All the possible resonance structures are imaginary whereas the resonance hybrid is real.
  • These structures will differ only in the arrangement of the electrons not in the relative position of the atomic nuclei.

To find: The resonance structure of N2O4 and the explanation for combination of two NO2 molecules results in the formation of dinitrogen tetroxide.

Answer to Problem 6.92QP

Chemistry: Atoms First, Chapter 6, Problem 6.92QP , additional homework tip  1

Combination of two NO2 molecules is explained as below,

O2N·+·NO2N2O4

The single electron of one NO2 reacts with the single electron of other NO2 molecule to form a bond. The covalent bond formed by these shared electrons is more stable since octet is complete in N2O4.

Explanation of Solution

  • To know the tendency that how two NO2 molecules combine to form dinitrogen tetroxide.

O2N·+·NO2N2O4

The NO2 molecule contains a total of 17 valence electrons since nitrogen contributes 5 electrons and each of the oxygen contributes 6 electrons. It has odd number of electrons. It does not obey octet rule and is a stable free radical. The single electron of one NO2 reacts with the single electron of other NO2 molecule to form a bond. The covalent bond formed by these shared electrons is more stable since octet is complete in N2O4.

  • Resonance structure for N2O4 is drawn below.

Chemistry: Atoms First, Chapter 6, Problem 6.92QP , additional homework tip  2

In the case of N2O4, the chemical bonding of a molecule cannot be represented using a single Lewis structure. The chemical bonding are described by delocalization of electrons forming 3 possible resonance structures. In all the 3 resonance structures the position, over whole charge and chemical framework remains intact.

Conclusion

The resonance structures of N2O4 were drawn and combination of two NO2 molecules were explained.

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The formal charges of N2O4 should be drawn. The tendency for two NO2 molecules to combine to form dinitrogen tetroxide should be explained

Concept Introduction

  • A formal charge (FC) is the charge assigned to an atom in a molecule, irrespective of relative electronegativity by thinking that electrons in all chemical bonds are shared equally among atoms.
  • This method is used to identify the most probable Lewis structures if more than one possibility exists for a compound.
  • Formal charge of an atom can be determined by the given formula.
  • Formalcharge(FC)=(no.ofvalenceelectroninatom)12(no.ofbondingelectrons)(no.ofnon-bondingelectrons)

Answer to Problem 6.92QP

Chemistry: Atoms First, Chapter 6, Problem 6.92QP , additional homework tip  3

Explanation of Solution

The formal charge for the first given resonance structure is depicted below.

Chemistry: Atoms First, Chapter 6, Problem 6.92QP , additional homework tip  4

The formal charge of the given compound is calculated,

  • Nitrogen atom

Numberofvalenceelectron=5Numberofbondingelectron=8Numberofnon-bondingelectron=0

Substituting these values to the equation,

FC=5(12×8)=+1

  • Both nitrogen atoms are similar in N2O4 molecule thus have similar formal charges.
  • Oxygen atom having single bond with nitrogen

Numberofvalenceelectron=6Numberofbondingelectron=2Numberofnon-bondingelectron=6

Substituting these values to the equation,

FC=6(12×2)6=1

  • Both oxygen atom having single bond with nitrogen is similar in N2O4 molecule thus have similar formal charges.
  • Oxygen atom having double bond with nitrogen

Numberofvalenceelectron=6Numberofbondingelectron=4Numberofnon-bondingelectron=4

Substituting these values to the equation,

FC=6(12×4)4=0

  • Both oxygen atom having double bond with nitrogen is similar in N2O4 molecule thus have similar formal charges.

The formal charge for the second given resonance structure is given below.

Chemistry: Atoms First, Chapter 6, Problem 6.92QP , additional homework tip  5

The formal charge of the given compound is calculated,

  • Nitrogen atom

Numberofvalenceelectron=5Numberofbondingelectron=8Numberofnon-bondingelectron=0

Substituting these values to the equation,

FC=5(12×8)=+1

  • Both nitrogen atoms are similar in N2O4 molecule thus have similar formal charges.
  • Oxygen atom having single bond with nitrogen

Numberofvalenceelectron=6Numberofbondingelectron=2Numberofnon-bondingelectron=6

Substituting these values to the equation,

FC=6(12×2)6=1

  • Both oxygen atom having single bond with nitrogen is similar in N2O4 molecule thus have similar formal charges.
  • Oxygen atom having double bond with nitrogen

Numberofvalenceelectron=6Numberofbondingelectron=4Numberofnon-bondingelectron=4

Substituting these values to the equation,

FC=6(12×4)4=0

  • Both oxygen atom having double bond with nitrogen is similar in N2O4 molecule thus have similar formal charges.

The formal charge for the third given resonance structure is given below.

Chemistry: Atoms First, Chapter 6, Problem 6.92QP , additional homework tip  6

The formal charge of the given compound is calculated,

  • Nitrogen atom

Numberofvalenceelectron=5Numberofbondingelectron=8Numberofnon-bondingelectron=0

Substituting these values to the equation,

FC=5(12×8)=+1

  • Both nitrogen atoms are similar in N2O4 molecule thus have similar formal charges.
  • Oxygen atom having single bond with nitrogen

Numberofvalenceelectron=6Numberofbondingelectron=2Numberofnon-bondingelectron=6

Substituting these values to the equation,

FC=6(12×2)6=1

  • Both oxygen atom having single bond with nitrogen is similar in N2O4 molecule thus have similar formal charges.
  • Oxygen atom having double bond with nitrogen

Numberofvalenceelectron=6Numberofbondingelectron=4Numberofnon-bondingelectron=4

Substituting these values to the equation,

FC=6(12×4)4=0

  • Both oxygen atom having double bond with nitrogen is similar in N2O4 molecule thus have similar formal charges.

The formal charge for the fourth given resonance structure is given below.

Chemistry: Atoms First, Chapter 6, Problem 6.92QP , additional homework tip  7

The formal charge of the given compound is calculated,

  • Nitrogen atom

Numberofvalenceelectron=5Numberofbondingelectron=8Numberofnon-bondingelectron=0

Substituting these values to the equation,

FC=5(12×8)=+1

  • Both nitrogen atoms are similar in N2O4 molecule thus have similar formal charges.
  • Oxygen atom having single bond with nitrogen

Numberofvalenceelectron=6Numberofbondingelectron=2Numberofnon-bondingelectron=6

Substituting these values to the equation,

FC=6(12×2)6=1

  • Both oxygen atom having single bond with nitrogen is similar in N2O4 molecule thus have similar formal charges.
  • Oxygen atom having double bond with nitrogen

Numberofvalenceelectron=6Numberofbondingelectron=4Numberofnon-bondingelectron=4

Substituting these values to the equation,

FC=6(12×4)4=0

  • Both oxygen atom having double bond with nitrogen is similar in N2O4 molecule thus have similar formal charges.
Conclusion

The resonance structure of N2O4 and its corresponding formal charges were drawn. The tendency for two NO2 molecules to combine to form dinitrogen tetroxide was explained

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Chapter 6 Solutions

Chemistry: Atoms First

Ch. 6.2 - Prob. 3PPBCh. 6.2 - Prob. 3PPCCh. 6.2 - Prob. 6.2.1SRCh. 6.2 - Prob. 6.2.2SRCh. 6.2 - Prob. 6.2.3SRCh. 6.2 - Prob. 6.2.4SRCh. 6.3 - Draw the Lewis structure for carbon disulfide...Ch. 6.3 - Prob. 4PPACh. 6.3 - Prob. 4PPBCh. 6.3 - Prob. 4PPCCh. 6.3 - Prob. 6.3.1SRCh. 6.3 - Prob. 6.3.2SRCh. 6.4 - The widespread use of fertilizers has resulted in...Ch. 6.4 - Prob. 5PPACh. 6.4 - Prob. 5PPBCh. 6.4 - Prob. 5PPCCh. 6.4 - Formaldehyde (CH2O), which can be used 10 preserve...Ch. 6.4 - Prob. 6PPACh. 6.4 - Prob. 6PPBCh. 6.4 - Prob. 6PPCCh. 6.4 - Prob. 6.4.1SRCh. 6.4 - Prob. 6.4.2SRCh. 6.5 - Prob. 6.7WECh. 6.5 - Prob. 7PPACh. 6.5 - Prob. 7PPBCh. 6.5 - Prob. 7PPCCh. 6.5 - Prob. 6.5.1SRCh. 6.5 - Prob. 6.5.2SRCh. 6.6 - Prob. 6.8WECh. 6.6 - Prob. 8PPACh. 6.6 - Prob. 8PPBCh. 6.6 - Prob. 8PPCCh. 6.6 - Prob. 6.9WECh. 6.6 - Prob. 9PPACh. 6.6 - Prob. 9PPBCh. 6.6 - Elements in the same group exhibit similar...Ch. 6.6 - Prob. 6.10WECh. 6.6 - Draw three resonance structures for the hydrogen...Ch. 6.6 - Draw two resonance structures for each speciesone...Ch. 6.6 - Prob. 10PPCCh. 6.6 - Prob. 6.6.1SRCh. 6.6 - Prob. 6.6.2SRCh. 6.6 - Prob. 6.6.3SRCh. 6.6 - Prob. 6.6.4SRCh. 6 - Prob. 6.1QPCh. 6 - Prob. 6.2QPCh. 6 - Prob. 6.3QPCh. 6 - Prob. 6.4QPCh. 6 - Prob. 6.5QPCh. 6 - Prob. 6.6QPCh. 6 - Prob. 6.7QPCh. 6 - Prob. 6.8QPCh. 6 - Prob. 6.9QPCh. 6 - Define electronegativity and explain the...Ch. 6 - Prob. 6.11QPCh. 6 - Prob. 6.12QPCh. 6 - Prob. 6.13QPCh. 6 - Prob. 6.14QPCh. 6 - Prob. 6.15QPCh. 6 - Prob. 6.16QPCh. 6 - Arrange the following bonds in order of increasing...Ch. 6 - Prob. 6.18QPCh. 6 - Prob. 6.19QPCh. 6 - Prob. 6.20QPCh. 6 - Prob. 6.21QPCh. 6 - Prob. 6.22QPCh. 6 - Prob. 6.23QPCh. 6 - Prob. 6.24QPCh. 6 - Prob. 6.25QPCh. 6 - Prob. 6.26QPCh. 6 - Prob. 6.27QPCh. 6 - Prob. 6.28QPCh. 6 - Prob. 6.29QPCh. 6 - Prob. 6.30QPCh. 6 - Prob. 6.31QPCh. 6 - Prob. 6.32QPCh. 6 - Prob. 6.33QPCh. 6 - Prob. 6.34QPCh. 6 - Draw all of the resonance structures for the...Ch. 6 - Prob. 6.36QPCh. 6 - Prob. 6.37QPCh. 6 - Draw three resonance structures for the molecule...Ch. 6 - Draw three reasonable resonance structures for the...Ch. 6 - Indicate which of the following are resonance...Ch. 6 - Prob. 6.41QPCh. 6 - Prob. 6.42QPCh. 6 - Draw a resonance structure of the guanine molecule...Ch. 6 - Prob. 6.44QPCh. 6 - Give three examples of compounds that do not...Ch. 6 - Prob. 6.46QPCh. 6 - Prob. 6.47QPCh. 6 - Prob. 6.48QPCh. 6 - Prob. 6.49QPCh. 6 - Prob. 6.50QPCh. 6 - Prob. 6.51QPCh. 6 - Prob. 6.52QPCh. 6 - Prob. 6.53QPCh. 6 - Draw Lewis structures for the radical species ClF2...Ch. 6 - Prob. 6.55QPCh. 6 - Prob. 6.56QPCh. 6 - Prob. 6.57QPCh. 6 - Prob. 6.58QPCh. 6 - Prob. 6.59QPCh. 6 - Prob. 6.60QPCh. 6 - Give an example of an ion or molecule containing...Ch. 6 - Prob. 6.62QPCh. 6 - Prob. 6.63QPCh. 6 - Prob. 6.64QPCh. 6 - Are the following statements true or false? (a)...Ch. 6 - Prob. 6.66QPCh. 6 - Prob. 6.67QPCh. 6 - Most organic acids can be represented as RCOOH,...Ch. 6 - Prob. 6.69QPCh. 6 - Prob. 6.70QPCh. 6 - Prob. 6.71QPCh. 6 - The following species have been detected in...Ch. 6 - Prob. 6.73QPCh. 6 - Prob. 6.74QPCh. 6 - The triiodide ion (I3) in which the I atoms are...Ch. 6 - Prob. 6.76QPCh. 6 - Prob. 6.77QPCh. 6 - The chlorine nitrate (ClONO2) molecule is believed...Ch. 6 - Prob. 6.79QPCh. 6 - For each of the following organic molecules draw a...Ch. 6 - Prob. 6.81QPCh. 6 - Draw Lewis structures for the following organic...Ch. 6 - Draw Lewis structures for the following four...Ch. 6 - Prob. 6.84QPCh. 6 - Prob. 6.85QPCh. 6 - Draw three resonance structures for (a) the...Ch. 6 - Prob. 6.87QPCh. 6 - Prob. 6.88QPCh. 6 - Prob. 6.89QPCh. 6 - Draw a Lewis structure for nitrogen pentoxide...Ch. 6 - Prob. 6.91QPCh. 6 - Nitrogen dioxide (NO2) is a stable compound....Ch. 6 - Prob. 6.93QPCh. 6 - Vinyl chloride (C2H3Cl) differs from ethylene...Ch. 6 - Prob. 6.95QPCh. 6 - Prob. 6.96QPCh. 6 - In 1999 an unusual cation containing only nitrogen...Ch. 6 - Prob. 6.98QPCh. 6 - Prob. 6.99QPCh. 6 - Electrostatic potential maps for three compounds...Ch. 6 - Which of the following atoms must always obey the...Ch. 6 - Prob. 6.2KSPCh. 6 - Prob. 6.3KSPCh. 6 - How many lone pairs are on the central atom in the...
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