EBK INTRODUCTORY CHEMISTRY: AN ACTIVE L
EBK INTRODUCTORY CHEMISTRY: AN ACTIVE L
6th Edition
ISBN: 9780100547506
Author: CRACOLICE
Publisher: YUZU
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Chapter 16, Problem 74E
Interpretation Introduction

Interpretation:

The normality of NaHCO3 in the reaction when 9.79g of NaHCO3 is dissolved in 5.00×102mL of solution is to be calculated.

Concept introduction:

Solution is a homogeneous mixture of two or more components. A sample taken from any part of the solution will have the same composition as the rest of the solution. The normality of a solution is defined as the number of equivalents per liter of the solution. One equivalent of an acid is the quantity that gives 1 mole of hydrogen ions in a chemical reaction. One equivalent of a base is the quantity that reacts with one mole of hydrogen ions.

Expert Solution & Answer
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Answer to Problem 74E

The normality of NaHCO3 in the reaction when 9.79g of NaHCO3 is dissolved in 5.00×102mL of solution is 0.234N.

Explanation of Solution

The formula to calculate the normality is given below.

Normality=EquivalentsofsoluteVolumeofsolutioninliters …(1)

The volume of the solution is 5.00×102mL.

The relation between L and mL is given below.

1L=1000mL

The probable conversion factors are given below.

1L1000mLand1000mL1L

The conversion factor to determine L from mL is given below.

1L1000mL

Therefore, the volume in liters is calculated below.

Volume=5.00×102mL×1L1000mL=0.500L

The reaction of NaHCO3 is given below.

NaHCO3+HClNaCl+H2O+CO2

In this reaction, 1 mole of NaHCO3 gives 1 mole of H+ ions during the reaction. Therefore, the number of equivalents per mole is 1.

The formula to calculate the equivalent mass is given below.

Equivalentmass=MolarmassofNaHCO3NumberofequivalentsofNaHCO3 …(2)

The molar mass of oxygen is 16.00gmol1.

The molar mass of sodium is 22.99gmol1.

The molar mass of carbon is 12.01gmol1.

The molar mass of hydrogen is 1.008gmol1.

Therefore, the molar mass of NaHCO3 is calculated below.

Totalmolarmass=22.99gmol1+1.008gmol1+12.01gmol1+(3×16.00gmol1)=22.99gmol1+1.008gmol1+12.01gmol1+48.00gmol1=84.008gmol1

Substitute the molar mass and number of equivalents of NaHCO3 in equation (2).

EquivalentmassofNaHCO3=84.008gNaHCO31eqNaHCO3

Therefore, the conversion factors are written below.

84.008gNaHCO31eqNaHCO3and1eqNaHCO384.008gNaHCO3

The conversion factor to determine the equivalents of NaHCO3 from the mass of NaHCO3 is given below.

1eqNaHCO384.008gNaHCO3

The equivalents of NaHCO3 can be determined by the formula given below.

EquivalentsofNaHCO3=(MassofNaHCO3×ConversionfactortoobtainequivalentmassofNaHCO3) …(3)

The mass of NaHCO3 is 9.79g.

Substitute the mass of NaHCO3 and the conversion factor in equation (3).

EquivalentsofNaHCO3=9.79gNaHCO3×1eqNaHCO384.008gNaHCO3=0.117eqNaHCO3

Therefore, the equivalents of solute, NaHCO3 is 0.117eq.

Substitute the value of equivalents of solute and volume of solution in equation (1).

Normality=0.117eqNaHCO30.500L=0.234eq/L

The relation between N and eq/L as shown below.

1N=1eq/L

The probable conversion factors are given below.

1N1eq/Land1eq/L1N

The conversion factor to determine N from eq/L is given below.

1N1eq/L

Therefore, 0.234eq/L can be written as shown below.

Normality=0.234eq/LNaHCO3×1N1eq/L=0.234NNaHCO3

Therefore, the normality of NaHCO3 in the reaction when 9.79g of NaHCO3 is dissolved in 5.00×102mL of solution is 0.234N.

Conclusion

The normality of NaHCO3 in the reaction when 9.79g of NaHCO3 is dissolved in 5.00×102mL of solution is 0.234N.

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Chapter 16 Solutions

EBK INTRODUCTORY CHEMISTRY: AN ACTIVE L

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Solutions: Crash Course Chemistry #27; Author: Crash Course;https://www.youtube.com/watch?v=9h2f1Bjr0p4;License: Standard YouTube License, CC-BY