Chemistry & Chemical Reactivity
Chemistry & Chemical Reactivity
9th Edition
ISBN: 9781133949640
Author: John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher: Cengage Learning
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Chapter 21, Problem 81GQ

(a)

Interpretation Introduction

Interpretation:

To identify the oxidizing agent and reducing agent in the given reaction.

Concept introduction:

An oxidizing agent is a species which reduce other species by gaining electrons in a chemical reaction whereas a reducing agent is a species which loose electrons in the chemical reaction.

The oxidation number of an atom is the charge that atom would have if the compound was composed of ions or the total number of electrons that an atom gain or loss to form a chemical bond with another atom.

(a)

Expert Solution
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Answer to Problem 81GQ

The N2O4 molecule acts as the oxidizing agent and NH2N(CH3)2 molecule act as the reducing agent.

Explanation of Solution

The balanced chemical equation between NH2N(CH3)2 and N2O4 is written as,

    NH2N(CH3)2(l)+2N2O4(l)3N2(g)+4H2O(g)+2CO2(g)

The oxidation number of nitrogen in N2O4 molecule is +4 is reduced to 0 in N2 molecule. Therefore, N2O4 is the oxidizing agent.

The oxidation number of nitrogen in NH2N(CH3)2 molecule is 2 is oxidised to 0 in N2 molecule. Therefore, NH2N(CH3)2 is the reducing agent.

(b)

Interpretation Introduction

Interpretation:

To calculate the mass of N2O4 which is required to react with NH2N(CH3)2 and to calculate the mass of each product produced by the reaction of NH2N(CH3)2 with N2O4

Concept introduction:

Numberofmoles=MassMolecularmassMass=Numberofmoles×Molecularmass

(b)

Expert Solution
Check Mark

Answer to Problem 81GQ

The mass of N2O4 molecule is reacted with NH2N(CH3)2 is 1.3×104kg. The mass of water molecule produced from NH2N(CH3)2 is 4.9×103kg. The mass of N2 molecule produced from NH2N(CH3)2 is 5.7×103kg. The mass of CO2 molecule produced from NH2N(CH3)2 is 6×103kg.

Explanation of Solution

The mass of N2O4 which is required to react with NH2N(CH3)2 and the mass of each product produced by the reaction of NH2N(CH3)2 with N2O4 is calculated below.

Given:

The mass of NH2N(CH3)2 molecule is 4100kg.

The balanced chemical equation between NH2N(CH3)2 and N2O4 is written as,

    NH2N(CH3)2(l)+2N2O4(l)3N2(g)+4H2O(g)+2CO2(g) (1)

The number of moles (nNH2N(CH3)2) of NH2N(CH3)2 is equal to the mass of NH2N(CH3)2 molecule divided by its molecular weight. The number of moles (nNH2N(CH3)2) is calculated as,

nNH2N(CH3)2=4100×103g60gmol1=68.33×103mol

From equation (1), one mole of NH2N(CH3)2 reacted with two moles of N2O4 molecules. Therefore, the number of moles (nN2O4) of N2O4 molecule react with 68.33×103mol of NH2N(CH3)2 is written as,

nN2O4=(2mol1mol)(68.33×103mol)=136.66×103mol

The mass (mN2O4) of N2O4 molecule is equal to the product of a number of moles of N2O4 molecule and its molecular weight. The mass (mN2O4) of N2O4 molecule is calculated as,

mN2O4=(136.66×103mol)(92.011gmol1)=12.57×103g=1.3×104kg

Therefore, the mass of N2O4 molecule is reacted with NH2N(CH3)2  is 1.3×104kg.

From equation (1), one mole of NH2N(CH3)2 produced three moles of N2 molecules. Therefore, the number of moles (nN2) of N2 molecule produced from 68.33×103mol of NH2N(CH3)2  is written as,

nN2=(3mol1mol)(68.33×103mol)=204.99×103mol

The mass (mN2) of N2 molecule is equal to the product of a number of moles of N2 molecule and its molecular weight. The mass (mN2) of N2 molecule is calculated as,

mN2=(204.99×103mol)(28gmol1)=5.7×106g=5.7×103kg

Therefore, the mass of N2 molecule produced from NH2N(CH3)2 is 5.7×103kg.

From equation (1) it is clear that, one mole of NH2N(CH3)2 produced four moles of water molecules. Therefore, the number of moles (nH2O) of water molecule reacted with 68.33×103mol of NH2N(CH3)2 is written as,

nH2O=(4mol1mol)(68.33×103mol)=273.32×103mol

The mass (mH2O) of water molecule is equal to the product of a number of moles of the water molecule and its molecular weight. The mass (mH2O) of water molecule is calculated as,

mH2O=(273.32×103mol)(18gmol1)=4.9×106g=4.9×103kg

Therefore, the mass of water molecule produced from NH2N(CH3)2 is 4.9×103kg.

From equation (1), one mole of NH2N(CH3)2 produced two moles of CO2 molecules. Therefore, the number of moles (nCO2) of CO2 molecule produced from 68.33×103mol of NH2N(CH3)2 is written as,

nCO2=(2mol1mol)(68.33×103mol)=136.66×103mol

The mass (mCO2) of CO2 molecule is equal to the product of a number of moles of CO2 molecule and its molecular weight. The mass (mCO2) of CO2 molecule is calculated as,

mCO2=(136.66×103mol)(44gmol1)=6×106g=6×103kg

Therefore, the mass of CO2 molecule produced from NH2N(CH3)2 is 6×103kg.

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Chapter 21 Solutions

Chemistry & Chemical Reactivity

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