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Chapter 7, Problem 7.45E
Interpretation Introduction

(a)

Interpretation:

The number of moles of NaI in 50.0mL of a 0.400M solution is to be predicted.

Concept Introduction:

The Molarity is calculated by the formula,

Molarity=NumberofmolesVolume(mL)×1000mL1L

Expert Solution
Check Mark

Answer to Problem 7.45E

The number of moles of NaI in 50.0mL of a 0.400M solution is 0.02moles.

Explanation of Solution

The number of moles of NaI is calculated by the formula,

Molarity=NumberofmolesVolume(mL)×1000mL1L

The given volume and molarity is 50.0mL and 0.400M respectively.

Substitute the volume and molarity in the given formula.

Numberofmoles=0.400M×50.0mL×1L1000mLNumberofmoles=0.02moles

Thus, the number of moles of NaI is 0.02moles.

Conclusion

The number of moles of NaI in 50.0mL of a 0.400M solution is 0.02moles.

Interpretation Introduction

(b)

Interpretation:

The number of grams of KBr in 120.0mL of a 0.720M solution is to be predicted.

Concept Introduction:

The number of moles is calculated by the formula,

Molarity=NumberofmolesVolume(mL)×1000mL1L

Expert Solution
Check Mark

Answer to Problem 7.45E

Thenumber of grams of KBr in 120.0mL of a 0.720M solution is 10.28g.

Explanation of Solution

The number of moles of KBr is calculated by the formula,

Molarity=NumberofmolesVolume(mL)×1000mL1L

The volume and molarity is 120.0mL and 0.720M respectively.

Substitute the volume and molarity in the given formula.

Numberofmoles=0.720M×120.0mL×1L1000mLNumberofmoles=0.0864moles

Thus, the number of moles of KBr is 0.0864moles.

The amount of KBr is calculated by the formula,

Moles=GivenmassMolarmass

The molar mass of KBr is 119.0g/mol.

Substitute the value of molar mass in the given formula.

0.0864moles=AmountofKBr119.0g/molAmountofKBr=0.0864moles×119.0g/mol=10.28g

Thus, the number of grams of KBr in 120.0mL of a 0.720M solution is 10.28g.

Conclusion

Thenumber of grams of KBr in 120.0mL of a 0.720M solution is 10.28g.

Interpretation Introduction

(c)

Interpretation:

The number of grams of NaCl in 20.0mL of a 1.20%(w/v)NaCl solution is to be predicted.

Concept Introduction:

The concentration of the solution in %(w/v) is given by the formula,

%(w/v)=gramsofsolutemillilitersofsolution×100

Expert Solution
Check Mark

Answer to Problem 7.45E

The number of grams of NaCl in 20.0mL of a 1.20%(w/v)NaCl solution is 0.24g.

Explanation of Solution

The concentration of the solution in %(w/v) is given by the formula,

%(w/v)=gramsofsolutemillilitersofsolution×100 …(1)

The given value of %(w/v) is 1.20%(w/v). The volume of NaCl solution is 20.0mL.

Substitute the value of %(w/v) and volume in equation (1).

1.20=gramsofsolute20.0L×100gramsofsolute=1.20×20.0L100=0.24g

Hence, the number of grams of NaCl in 20.0mL of a 1.20%(w/v)NaCl solution is 0.24g.

Conclusion

The number of grams of NaCl in 20.0mL of a 1.20%(w/v)NaCl solution is 0.24g.

Interpretation Introduction

(d)

Interpretation:

The number of milliliters of alcohol in 250.mL of a 20.0%(v/v) solution is to be predicted.

Concept Introduction:

The concentration of the solution in %(v/v) is given by the formula,

%(v/v)=solutevolumesolultionvolume×100

Expert Solution
Check Mark

Answer to Problem 7.45E

The number of milliliters of alcohol in 250.mL of a 20.0%(v/v) solution is 50mL.

Explanation of Solution

The concentration of the solution in %(v/v) is given by the formula,

%(v/v)=solutevolumesolultionvolume×100 …(1)

The given value of %(v/v) is 20.0%(v/v). The volume of solution is 250.mL.

Substitute the value of %(v/v) and solution volume in equation (1).

20.0=volumeofalcohol250mL×100volumeofalcohol =250mL×20.0100=50mL

Hence, the number of milliliters of alcohol in 250.mL of a 20.0%(v/v) solution is 50mL.

Conclusion

The number of milliliters of alcohol in 250.mL of a 20.0%(v/v) solution is 50mL.

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Chapter 7 Solutions

Bundle: Chemistry for Today: General, Organic, and Biochemistry, Loose-Leaf Version, 9th + LMS Integrated OWLv2, 4 terms (24 months) Printed Access Card

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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