Introductory Chemistry: An Active Learning Approach
Introductory Chemistry: An Active Learning Approach
6th Edition
ISBN: 9781305545014
Author: CRACOLICE
Publisher: Cengage
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Chapter 7, Problem 23E
Interpretation Introduction

(a)

Interpretation:

The number of moles of oxygen in 6.79g oxygen is to be calculated.

Concept introduction:

A mole of a substance is defined as the same number of particles of the substance as that present in 12g of 12C. The number of particles present in one mole of a substance is 6.02×1023 particles. The number of moles a substance is given as,n=mM

Expert Solution
Check Mark

Answer to Problem 23E

The number of moles of oxygen in 6.79g oxygen is 0.212mol.

Explanation of Solution

The given mass of oxygen is 6.79g.

The molar mass of the oxygen atom is 16.00g/mol.

The molar mass of compound is the sum of molar mass of individual elements present in it.

Therefore, the molar mass of is=2O=2×16.00g/mol=32.00g/mol

Hence, the molar mass of O2 is 32.00g/mol.

The number of moles of a substance is given as,n=mM…(1)

Where,

m represents the mass of the substance.

M represents the molar mass of the substance.

Substitute the value of mass and molar mass of oxygen in the equation (1).

n=6.79g32.00g/mol=0.212mol

Therefore, the number of moles of oxygen in 6.79g oxygen is 0.212mol].

Conclusion

The number of moles of oxygen in 6.79g oxygen is 0.212mol.

Interpretation Introduction

(b)

Interpretation:

The number of moles of magnesium nitrate in 9.05g magnesium nitrate is to be calculated.

Concept introduction:

A mole of a substance is defined as the same number of particles of the substance as present in 12g of 12C. The number of particles present in one mole of a substance is 6.02×1023 particles. The number of moles of a substance is given as,n=mM

Expert Solution
Check Mark

Answer to Problem 23E

The number of moles of magnesium nitrate in 9.05g magnesium nitrate is 0.0610mol.

Explanation of Solution

The given mass of magnesium nitrate is 9.05g.

The molar mass of the magnesium atom is 24.31g/mol.

The molar mass of the nitrogen atom is 14.01g/mol.

The molar mass of the oxygen atom is 16.00g/mol.

The molar mass of compound is the sum of molar mass of individual elements present in it.

Therefore, the molar mass of is=Mg+2N+6O=24.31g/mol+2×14.01g/mol+6×16.00g/mol=148.33g/mol

Hence, the molar mass of Mg(NO3)2 is 148.33g/mol.

The number of moles of a substance is given as,n=mM…(1)

Where,

m represents the mass of the substance.

M represents the molar mass of the substance.

Substitute the value of mass and molar mass of magnesium nitrate in the equation (1).

n=9.05g148.33g/mol=0.0610mol

Therefore, the number of moles of magnesium nitrate in 9.05g magnesium nitrate is 0.0610mol.

Conclusion

The number of moles of magnesium nitrate in 9.05g magnesium nitrate is 0.0610mol.

Interpretation Introduction

(c)

Interpretation:

The number of moles of aluminum oxide in 0.770g aluminum oxide is to be calculated.

Concept introduction:

A mole of a substance is defined as the same number of particles of the substance as present in 12g of 12C. The number of particles present in one mole of a substance is 6.02×1023 particles. The number of moles of a substance is given as,n=mM

Expert Solution
Check Mark

Answer to Problem 23E

The number of moles of aluminum oxide in 0.770g aluminum oxide is 0.00755mol.

Explanation of Solution

The given mass of aluminum oxide is 0.770g.

The molar mass of the aluminum atom is 26.98g/mol.

The molar mass of the oxygen atom is 16.00g/mol.

The molar mass of compound is the sum of molar mass of individual elements present in it.

Therefore, the molar mass of is=2Al+3O=2×26.98g/mol+3×16.00g/mol=101.96g/mol

Hence, the molar mass of Al2O3 is 101.96g/mol.

The number of moles of a substance is given as,n=mM…(1)

Where,

m represents the mass of the substance.

M represents the molar mass of the substance.

Substitute the value of mass and molar mass of aluminum oxide in the equation (1).

n=0.770g101.96g/mol=0.00755mol

Therefore, the number of moles of aluminum oxide in 0.770g aluminum oxide is 0.00755mol.

Conclusion

The number of moles of aluminum oxide in 0.770g aluminum oxide is 0.00755mol.

Interpretation Introduction

(d)

Interpretation:

The number of moles of C2H5OH in 659gC2H5OH is to be calculated.

Concept introduction:

A mole of a substance is defined as the same number of particles of the substance as present in 12g of 12C. The number of particles present in one mole of a substance is 6.02×1023 particles. The number of moles of a substance is given as,n=mM

Expert Solution
Check Mark

Answer to Problem 23E

The number of moles of C2H5OH in 659gC2H5OH is 14.3mol.

Explanation of Solution

The given mass of C2H5OH is 659g.

The molar mass of the carbon atom is 12.01g/mol.

The molar mass of the hydrogen atom is 1.008g/mol.

The molar mass of the oxygen atom is 16.00g/mol.

The molar mass of compound is the sum of molar mass of individual elements present in it.

Therefore, the molar mass of is=2C+O+6H=2×12.01g/mol+16.00g/mol+6×1.008g/mol46.07g/mol

Hence, the molar mass of C2H5OH is 46.07g/mol.

The number of moles of a substance is given as,n=mM…(1)

Where,

m represents the mass of the substance.

M represents the molar mass of the substance.

Substitute the value of mass and molar mass of C2H5OH in the equation (1).

n=659g46.07g/mol=14.3mol

Therefore, the number of moles of C2H5OH in 659gC2H5OH is 14.3mol.

Conclusion

The number of moles of C2H5OH in 659gC2H5OH is 14.3mol.

Interpretation Introduction

(e)

Interpretation:

The number of moles of ammonium carbonate in 0.394g ammonium carbonate is to be calculated.

Concept introduction:

A mole of a substance is defined as the same number of particles of the substance as present in 12g of 12C. The number of particles present in one mole of a substance is 6.02×1023 particles. The number of moles of a substance is given as,n=mM

Expert Solution
Check Mark

Answer to Problem 23E

The number of moles of ammonium carbonate in 0.394g ammonium carbonate is 0.00410mol.

Explanation of Solution

The given mass of ammonium carbonate is 0.394g.

The molar mass of the carbon atom is 12.01g/mol.

The molar mass of the hydrogen atom is 1.008g/mol.

The molar mass of the nitrogen atom is 14.01g/mol.

The molar mass of the oxygen atom is 16.00g/mol.

The molar mass of compound is the sum of molar mass of individual elements present in it.

Therefore, the molar mass of is=2N+8H+C+3O=2×14.01g/mol+8×1.008g/mol+12.01g/mol+3×16.00g/mol96.09g/mol

Hence, the molar mass of (NH4)2CO3 is 96.09g/mol.

The number of moles of a substance is given as,n=mM …(1)

Where,

m represents the mass of the substance.

M represents the molar mass of the substance.

Substitute the value of mass and molar mass of ammonium carbonate in the equation (1).

n=0.394g96.09g/mol=0.00410mol

Therefore, the number of moles of ammonium carbonate in 0.394g ammonium carbonate is 0.00410mol.

Conclusion

The number of moles of ammonium carbonate in 0.394g ammonium carbonate is 0.00410mol.

Interpretation Introduction

(f)

Interpretation:

The number of moles of lithium sulfide in 34.0g lithium sulfide is to be calculated.

Concept introduction:

A mole of a substance is defined as the same number of particles of the substance as present in 12g of 12C. The number of particles present in one mole of a substance is 6.02×1023 particles. The number of moles of a substance is given as,n=mM

Expert Solution
Check Mark

Answer to Problem 23E

The number of moles of lithium sulfide in 34.0g lithium sulfide is 0.740mol.

Explanation of Solution

The given mass of lithium sulfide is 34.0g.

The molar mass of the sulfur atom is 32.06g/mol.

The molar mass of the lithium atom is 6.94g/mol.

The molar mass of compound is the sum of molar mass of individual elements present in it.

Therefore, the molar mass of is=2Li+S=2×6.94g/mol+32.06g/mol45.94g/mol

Hence, the molar mass of Li2S is 45.94g/mol.

The number of moles of a substance is given as,n=mM…(1)

Where,

m represents the mass of the substance.

M represents the molar mass of the substance.

Substitute the value of mass and molar mass of lithium sulfide in the equation (1).

n=34.0g45.94g/mol=0.740mol

Therefore, the number of moles of lithium sulfide in 34.0g lithium sulfide is 0.740mol.

Conclusion

The number of moles of lithium sulfide in 34.0g lithium sulfide is 0.740mol.

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Chapter 7 Solutions

Introductory Chemistry: An Active Learning Approach

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