2. What is the normal boiling point of the following solutions? (a) 23.5 g NaCl in 120 g H₂O and (b) 15.4 g urea, CO(NH2)2, in 70 g H₂O. (H2O, Kb = 0.512°C/m)

Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
icon
Related questions
Question

2 & 5

Learning Task 8: Solve the following problems. Show your complete solution.
1. Nicotine, extracted from cigarettes, is a liquid completely miscible with water at
temperatures below 60°C. What is the molality of nicotine in an aqueous solution that
starts to freeze at -0.560°C? (H2O, K = 1.86°C/m)
2. What is the normal boiling point of the following solutions? (a) 23.5 g NaCl in 120
g H₂0 and (b) 15.4 g urea, CO(NH2)2, in 70 g H₂O. (H2O, Kb = 0.512°C/m)
3. 5.00 g of an organic solid is dissolved in 100.0 g of benzene. The boiling
temperature of this solution is 82.42°C. What is the molar mass of the organic solid?
(benzene, boiling pt. = 80.10°C, Kb = 2.53°C/m)
4. A solution of 2.50 g of a compound having the empirical formula C6H5P in 25.0 g
of benzene is observed to freeze at 4.3°C. Calculate the molar mass of the solute and
its molecular formula. (benzene, freezing pt. = 5.50°C, K₁= 4.90 °C/m)
5. If 112.9 g of urea, CO(NH2)2, is added to 450.0 g of H₂O to form a solution with a
temperature of 30°C, what is the solution's vapor pressure? (vapor pressure of H₂O at
30°C 31.8 mmHg)
6. A solution is prepared by dissolving 20.3 g glucose, C6H12O6, in enough water to
make a 250 mL solution. What is the solution's osmotic pressure at 25°C?
Transcribed Image Text:Learning Task 8: Solve the following problems. Show your complete solution. 1. Nicotine, extracted from cigarettes, is a liquid completely miscible with water at temperatures below 60°C. What is the molality of nicotine in an aqueous solution that starts to freeze at -0.560°C? (H2O, K = 1.86°C/m) 2. What is the normal boiling point of the following solutions? (a) 23.5 g NaCl in 120 g H₂0 and (b) 15.4 g urea, CO(NH2)2, in 70 g H₂O. (H2O, Kb = 0.512°C/m) 3. 5.00 g of an organic solid is dissolved in 100.0 g of benzene. The boiling temperature of this solution is 82.42°C. What is the molar mass of the organic solid? (benzene, boiling pt. = 80.10°C, Kb = 2.53°C/m) 4. A solution of 2.50 g of a compound having the empirical formula C6H5P in 25.0 g of benzene is observed to freeze at 4.3°C. Calculate the molar mass of the solute and its molecular formula. (benzene, freezing pt. = 5.50°C, K₁= 4.90 °C/m) 5. If 112.9 g of urea, CO(NH2)2, is added to 450.0 g of H₂O to form a solution with a temperature of 30°C, what is the solution's vapor pressure? (vapor pressure of H₂O at 30°C 31.8 mmHg) 6. A solution is prepared by dissolving 20.3 g glucose, C6H12O6, in enough water to make a 250 mL solution. What is the solution's osmotic pressure at 25°C?
Expert Solution
steps

Step by step

Solved in 3 steps with 4 images

Blurred answer
Knowledge Booster
Solutions
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
Recommended textbooks for you
Chemistry
Chemistry
Chemistry
ISBN:
9781305957404
Author:
Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:
Cengage Learning
Chemistry
Chemistry
Chemistry
ISBN:
9781259911156
Author:
Raymond Chang Dr., Jason Overby Professor
Publisher:
McGraw-Hill Education
Principles of Instrumental Analysis
Principles of Instrumental Analysis
Chemistry
ISBN:
9781305577213
Author:
Douglas A. Skoog, F. James Holler, Stanley R. Crouch
Publisher:
Cengage Learning
Organic Chemistry
Organic Chemistry
Chemistry
ISBN:
9780078021558
Author:
Janice Gorzynski Smith Dr.
Publisher:
McGraw-Hill Education
Chemistry: Principles and Reactions
Chemistry: Principles and Reactions
Chemistry
ISBN:
9781305079373
Author:
William L. Masterton, Cecile N. Hurley
Publisher:
Cengage Learning
Elementary Principles of Chemical Processes, Bind…
Elementary Principles of Chemical Processes, Bind…
Chemistry
ISBN:
9781118431221
Author:
Richard M. Felder, Ronald W. Rousseau, Lisa G. Bullard
Publisher:
WILEY