CHEMISTRY (LOOSELEAF) >CUSTOM<
CHEMISTRY (LOOSELEAF) >CUSTOM<
13th Edition
ISBN: 9781264348992
Author: Chang
Publisher: MCGRAW-HILL HIGHER EDUCATION
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Chapter 12, Problem 12.19QP

Calculate the molalities of the following aqueous solutions: (a) 1.22 M sugar (C12H22O11) solution (density of solution = 1.12 g/mL), (b) 0.87 M NaOH solution (density of solution = 1.04 g/mL), (c) 5.24 M NaHCO3 solution (density of solution = 1.19 g/mL).

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: For the aqueous 1.22 M Sugar (C12H22O11) solution molality has to be calculated.

Concept introduction:

Molality: Molality is defined as number of moles of the solute present in the specified amount of the solvent in kilograms.

Molality =number of moles of the solutekg of solvent

Moles: One mole is equivalent to the mass of the substance consists same number of units equal to the atoms present in 12g of 12C.

From given mass of substance moles could be calculated by using the following formula,

Molesofsubstance GivenmassofsubstanceMolecularmass

Mass: It is the quantitative measure of a substance. The amount of matter present in substance is expressed as mass. The S.I. unit of mass is kg.

Answer to Problem 12.19QP

Molality of 1.22 M Sugar (C12H22O11) solution is 1.74m.

Explanation of Solution

Given data: Strength of sugar solution =1.22 M

Density of sugar solution =1.12g /mL

Calculation of mass of sugar:

Substitute the value of strength of sugar and molecular mass of sugar in the formula to calculate mass of sugar.

Molecular weight of sugar =342.3g

mass of sugar = 1.22 mol ×342.3g1mol sugar= 418 g418g = 0.418kg[1kg =1000g]

Calculation of mass of sugar solution:

mass of solution =1000mL×1.12g1mL=1120 g1120 g = 1.120kg[1kg =1000g]

Calculation of molality of the solution:

Substitute the value of moles of sugar and amount of solvent (water) into molality formula to calculate molality of sugar solution.

molality =1.22 mol sugar(1.120-0.418)kg H2O= 1.74m

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: For the aqueous 0.87 M NaOH  solution molality has to be calculated.

Concept introduction:

Molality (m): Molality is the number of moles of solute present in one kilogram of solvent. Molality is estimation of moles in relationship with solvent in the solution.

Molality (m) =Numberofmolesofsolute1kgofsolvent

Moles: One mole is equivalent to the mass of the substance consists same number of units equal to the atoms present in 12g of 12C.

From given mass of substance moles could be calculated by using the following formula,

Molesofsubstance GivenmassofsubstanceMolecularmass

Mass: It is the quantitative measure of a substance. The amount of matter present in substance is expressed as mass. The S.I. unit of mass is kg.

Answer to Problem 12.19QP

Molality of 0.87 M NaOH  solution is 0.87 m.

Explanation of Solution

Given data: Strength of Sodium hydroxide solution = 0.87M

Density of Sodium hydroxide solution =1.04 g /mL

Calculation of mass ofNaOH:

Substitute the value of strength of NaOH and molecular mass of NaOH in the formula to calculate mass of NaOH.

Molecular weight of NaOH= 40g

mass of NaOH = 0.87 molNaOH ×40g NaOH1mol NaOH= 35g NaOH

Calculation of mass of H2Osolution:

mass of solvent =1040g - 35g =1005g =1.005kg1kg =1000g

Calculation of molality of the solution:

Substitute the value of moles of Sodium hydroxide and amount of solvent (water) into molality formula, to calculate molality.

molality =0.87 mol 1.005kg H2O= 0.87m

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: For the aqueous 5.24 M NaHCO3 solution molality has to be calculated.

Concept introduction:

Molality (m): Molality is the number of moles of solute present in one kilogram of solvent. Molality is estimation of moles in relationship with solvent in the solution.

Molality (m) =Numberofmolesofsolute1kgofsolvent

Moles: One mole is equivalent to the mass of the substance consists same number of units equal to the atoms present in 12g of 12C.

From given mass of substance moles could be calculated by using the following formula,

Molesofsubstance GivenmassofsubstanceMolecularmass

Mass: It is the quantitative measure of a substance. The amount of matter present in substance is expressed as mass. The S.I. unit of mass is kg.

Answer to Problem 12.19QP

Molality of 5.24 M NaHCO3 solution is 6.99m.

Explanation of Solution

Given data: Strength of Sodium bicarbonate solution =5.24 M

Density of Sodium bicarbonate solution =1.19g /mL

Calculation of mass for NaHCO3 and solvent:

Substitute the value of molecular mass and strength of Sodium bicarbonate to calculate mass of NaHCO3.

mass of NaHCO3 = 5.24 mol ×84.01g1mol NaHCO3= 440g NaHCO3

mass of solvent (H2O) =1190g - 440g = 750g = 0.750kg1kg =1000g

Calculation of molality for given solution:

Substitute the value of moles of Sodium bicarbonate and amount of solvent (water) into molality formula to calculate molality of the given solution.

molality =5.24 mol NaHCO3 0.750 kg H2O= 6.99 m

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Chapter 12 Solutions

CHEMISTRY (LOOSELEAF) >CUSTOM<

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One...Ch. 12 - Prob. 12.92QPCh. 12 - Prob. 12.93QPCh. 12 - A solution of 1.00 g of anhydrous aluminum...Ch. 12 - Desalination is a process of removing dissolved...Ch. 12 - Prob. 12.96QPCh. 12 - A protein has been isolated as a salt with the...Ch. 12 - Prob. 12.98QPCh. 12 - Hydrogen peroxide with a concentration of 3.0...Ch. 12 - State which of the alcohols listed in Problem...Ch. 12 - Prob. 12.101QPCh. 12 - Iodine (I2) is only sparingly soluble in water...Ch. 12 - Prob. 12.103QPCh. 12 - In the apparatus shown, what will happen if the...Ch. 12 - Prob. 12.105QPCh. 12 - Concentrated hydrochloric acid is usually...Ch. 12 - Explain each of the following statements: (a) The...Ch. 12 - Prob. 12.108QPCh. 12 - A 0.050 M hydrofluoric acid (HF) solution is 11...Ch. 12 - Shown here is a plot of vapor pressures of two...Ch. 12 - Prob. 12.111QPCh. 12 - Prob. 12.112QPCh. 12 - Prob. 12.113QPCh. 12 - Prob. 12.114QPCh. 12 - Prob. 12.115QPCh. 12 - A mixture of ethanol and 1-propanol behaves...Ch. 12 - Prob. 12.117QPCh. 12 - Prob. 12.118QPCh. 12 - Prob. 12.119QPCh. 12 - Acetic acid is a weak acid that ionizes in...Ch. 12 - Making mayonnaise involves beating oil into small...Ch. 12 - Acetic acid is a polar molecule and can form...Ch. 12 - A 2.6-L sample of water contains 192 g of lead....Ch. 12 - Certain fishes in the Antarctic Ocean swim in...Ch. 12 - Prob. 12.125QPCh. 12 - Prob. 12.126QPCh. 12 - Prob. 12.127QPCh. 12 - At 27C, the vapor pressure of pure water is 23.76...Ch. 12 - Prob. 12.129QPCh. 12 - Liquids A (molar mass 100 g/mol) and B (molar mass...Ch. 12 - A very long pipe is capped at one end with a...Ch. 12 - Prob. 12.132QPCh. 12 - A mixture of liquids A and B exhibits ideal...Ch. 12 - Prob. 12.134QPCh. 12 - (a) Derive the equation relating the molality (m)...Ch. 12 - Prob. 12.136QPCh. 12 - A student carried out the following procedure to...Ch. 12 - Valinomycin is an antibiotic. 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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