General Chemistry: Atoms First
2nd Edition
ISBN: 9780321809261
Author: John E. McMurry, Robert C. Fay
Publisher: Prentice Hall
expand_more
expand_more
format_list_bulleted
Concept explainers
Textbook Question
Chapter 10, Problem 10.59SP
How much energy in kilojoules is released when 25.0 g of ethanol vapor at 93.0 °C is cooled to −11.0 °C? Ethanol has mp = −114.1 °C, bp = 78.3 °C, ΔHvap = 38.56 kJ/mol, and ΔHfusion = 4.93 kJ/mol. The molar heat capacity is 112.3 J/(K · mol) for the liquid and 65.6 J/(K · mol) for the vapor.
Expert Solution & Answer
Want to see the full answer?
Check out a sample textbook solutionChapter 10 Solutions
General Chemistry: Atoms First
Ch. 10.1 - The dipole moment of HF is = 1.83 D, and the bond...Ch. 10.1 - Prob. 10.2PCh. 10.1 - Prob. 10.3CPCh. 10.1 - Prob. 10.4CPCh. 10.2 - Prob. 10.5PCh. 10.2 - Prob. 10.6PCh. 10.4 - Prob. 10.7PCh. 10.4 - Chloroform (CHCl3) has Hvap = 29.2 kJ/mol and Svap...Ch. 10.5 - Prob. 10.9PCh. 10.5 - Prob. 10.10P
Ch. 10.8 - Prob. 10.11PCh. 10.8 - Prob. 10.12PCh. 10.8 - Prob. 10.13PCh. 10.8 - Prob. 10.14CPCh. 10.9 - Prob. 10.15PCh. 10.9 - Prob. 10.16CPCh. 10.11 - Prob. 10.17PCh. 10.11 - Prob. 10.18PCh. 10.11 - Prob. 10.19CPCh. 10.11 - Prob. 10.20PCh. 10.11 - Prob. 10.21PCh. 10 - Prob. 10.22CPCh. 10 - Prob. 10.23CPCh. 10 - Zinc sulfide, or sphalerite, crystallizes in the...Ch. 10 - Perovskite, a mineral containing calcium, oxygen,...Ch. 10 - Prob. 10.26CPCh. 10 - Prob. 10.27CPCh. 10 - Prob. 10.28CPCh. 10 - Prob. 10.30CPCh. 10 - Prob. 10.31CPCh. 10 - Why dont all molecules with polar covalent bonds...Ch. 10 - Prob. 10.33SPCh. 10 - Prob. 10.34SPCh. 10 - Prob. 10.35SPCh. 10 - Methanol (CH3OH; bp = 65 C) boils nearly 230 C...Ch. 10 - Prob. 10.37SPCh. 10 - Which of the following substances would you expect...Ch. 10 - Prob. 10.39SPCh. 10 - Prob. 10.40SPCh. 10 - The dipole moment of ClF is 0.887 D and the...Ch. 10 - Prob. 10.42SPCh. 10 - Prob. 10.43SPCh. 10 - The class of ions PtX42, where X is a halogen, has...Ch. 10 - Prob. 10.45SPCh. 10 - Prob. 10.46SPCh. 10 - Prob. 10.47SPCh. 10 - Prob. 10.48SPCh. 10 - Prob. 10.49SPCh. 10 - Prob. 10.50SPCh. 10 - Prob. 10.51SPCh. 10 - Mercury has mp = 38.8 C and bp = 356.6 C. What, if...Ch. 10 - Prob. 10.53SPCh. 10 - Prob. 10.54SPCh. 10 - Prob. 10.55SPCh. 10 - Prob. 10.56SPCh. 10 - Prob. 10.57SPCh. 10 - Prob. 10.58SPCh. 10 - How much energy in kilojoules is released when...Ch. 10 - Draw a molar heating curve for ethanol, C2H5OH,...Ch. 10 - Prob. 10.61SPCh. 10 - Prob. 10.62SPCh. 10 - Prob. 10.63SPCh. 10 - Prob. 10.64SPCh. 10 - Prob. 10.65SPCh. 10 - Prob. 10.66SPCh. 10 - Prob. 10.67SPCh. 10 - Prob. 10.68SPCh. 10 - Prob. 10.69SPCh. 10 - Prob. 10.70SPCh. 10 - Prob. 10.71SPCh. 10 - Prob. 10.72SPCh. 10 - Prob. 10.73SPCh. 10 - Prob. 10.74SPCh. 10 - Prob. 10.75SPCh. 10 - Prob. 10.76SPCh. 10 - Which of the substances diamond, Hg, Cl2, glass,...Ch. 10 - Prob. 10.78SPCh. 10 - Prob. 10.79SPCh. 10 - Prob. 10.80SPCh. 10 - Prob. 10.81SPCh. 10 - Prob. 10.82SPCh. 10 - Prob. 10.83SPCh. 10 - Prob. 10.84SPCh. 10 - Prob. 10.85SPCh. 10 - Prob. 10.86SPCh. 10 - Prob. 10.87SPCh. 10 - Prob. 10.88SPCh. 10 - Sodium has a density of 0.971 g/cm3 and...Ch. 10 - Prob. 10.90SPCh. 10 - Prob. 10.91SPCh. 10 - Prob. 10.92SPCh. 10 - Prob. 10.93SPCh. 10 - Prob. 10.94SPCh. 10 - Prob. 10.95SPCh. 10 - Look at the phase diagram of CO2 in Figure 10.29,...Ch. 10 - Prob. 10.97SPCh. 10 - Prob. 10.98SPCh. 10 - Prob. 10.99SPCh. 10 - Prob. 10.100SPCh. 10 - Prob. 10.101SPCh. 10 - Does solid oxygen (Problem 10.99) melt when...Ch. 10 - Prob. 10.103SPCh. 10 - Prob. 10.104SPCh. 10 - Prob. 10.105SPCh. 10 - Prob. 10.106SPCh. 10 - Prob. 10.107SPCh. 10 - Prob. 10.108CHPCh. 10 - Prob. 10.109CHPCh. 10 - Prob. 10.110CHPCh. 10 - Prob. 10.111CHPCh. 10 - Prob. 10.112CHPCh. 10 - Prob. 10.113CHPCh. 10 - Prob. 10.114CHPCh. 10 - Prob. 10.115CHPCh. 10 - Magnesium metal has Hfusion = 9.037 kJ/mol and...Ch. 10 - Prob. 10.117CHPCh. 10 - Prob. 10.118CHPCh. 10 - Prob. 10.119CHPCh. 10 - Prob. 10.120CHPCh. 10 - Prob. 10.121CHPCh. 10 - Prob. 10.122CHPCh. 10 - Prob. 10.123CHPCh. 10 - Calculate the percent volume occupied by the...Ch. 10 - Prob. 10.125CHPCh. 10 - Prob. 10.126CHPCh. 10 - Prob. 10.127CHPCh. 10 - A drawing of the NaCl unit cell is shown in Figure...Ch. 10 - Niobium oxide crystallizes in the following cubic...Ch. 10 - Prob. 10.130CHPCh. 10 - One form of silver telluride (Ag2Te) crystallizes...Ch. 10 - Prob. 10.132CHPCh. 10 - Prob. 10.133MPCh. 10 - Prob. 10.134MPCh. 10 - A group 3A metal has a density of 2.70 g/cm3 and a...Ch. 10 - Prob. 10.136MP
Knowledge Booster
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.Similar questions
- 1. Which of the following processes requires the largest input of energy as heat? raising the temperature of 100 g of water by 1.0 °C vaporization of 0.10 g of water at 100 °C melting 1.0 g of ice at 0 °C warming 1.0 g of ice from −50 °C to 0 °C (specific heat of ice = 2.06 J/g · K)arrow_forwardThe cooling effect of alcohol on the skin is due to its evaporation. Calculate the heat of vaporization of ethanol (ethyl alcohol), C2H5OH. C2H5OH(l)C2H5OH(g);H=? The standard enthalpy of formation of C2H5OH(l) is 277.7 kJ/mol and that of C2H5OH(g) is 235.1 kJ/mol.arrow_forwardIf you want to convert 56.0 g ice (at 0 °C) to water at 75.0 °C, calculate how many grams of propane, C3H8, you would have to bum to supply the energy to melt the ice and then warm it to the final temperature (at 1 bar).arrow_forward
- Benzene, C6H6, is an organic liquid that freezes at 5.5 C (Figure 11.1) to form beautiful, feather-like crystals. How much energy is evolved as heat when 15.5 g of benzene freezes at 5.5 C? (The enthalpy of fusion of benzene is 9.95 kJ/mol.) If the 15.5-g sample is remelted, again at 5.5 C, what quantity of energy is required to convert it to a liquid?arrow_forwardAre changes in state physical or chemical changes? Explain. What type of forces must be overcome to melt or vaporize a substance (are these forces intramolecular or intermolecular)? Define the molar heat of fusion and molar heat of vaporization. Why is the molar heat of vaporization of water so much larger than its molar heat of fusion? Why does the boiling point of a liquid vary with altitude?arrow_forwardSuppose you wanted to cool 100. g of water from 20 C to 0 C using dry ice, CO2(s). The enthalpy of sublimation of CO2(s) is 25.2 kJ/mol. What mass of dry ice should you need? (a) 033 g (b) 15 g (c) 3.5 g (d) 150 garrow_forward
- Chloromethane, CH3CI, arises from microbial fermentation and is found throughout the environment. It is also produced industrially, is used in the manufacture of various chemicals, and has been used as a topical anesthetic. How much energy is required to convert 92.5 g of liquid to a vapor at its boiling point, 24.09 C? (The heat of vaporization of CH3Cl is 21.40 kJ/mol.)arrow_forwardWhich evolves more heat—freezing 100.0 g of benzene or 100.0 g of bromine?arrow_forward
arrow_back_ios
arrow_forward_ios
Recommended textbooks for you
- Introductory Chemistry: A FoundationChemistryISBN:9781337399425Author:Steven S. Zumdahl, Donald J. DeCostePublisher:Cengage LearningChemistry: An Atoms First ApproachChemistryISBN:9781305079243Author:Steven S. Zumdahl, Susan A. ZumdahlPublisher:Cengage LearningChemistry & Chemical ReactivityChemistryISBN:9781133949640Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage Learning
- Chemistry & Chemical ReactivityChemistryISBN:9781337399074Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage LearningChemistry: Principles and PracticeChemistryISBN:9780534420123Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward MercerPublisher:Cengage LearningChemistry for Engineering StudentsChemistryISBN:9781337398909Author:Lawrence S. Brown, Tom HolmePublisher:Cengage Learning
Introductory Chemistry: A Foundation
Chemistry
ISBN:9781337399425
Author:Steven S. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Chemistry: An Atoms First Approach
Chemistry
ISBN:9781305079243
Author:Steven S. Zumdahl, Susan A. Zumdahl
Publisher:Cengage Learning
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Chemistry: Principles and Practice
Chemistry
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:Cengage Learning
Chemistry for Engineering Students
Chemistry
ISBN:9781337398909
Author:Lawrence S. Brown, Tom Holme
Publisher:Cengage Learning
Types of Matter: Elements, Compounds and Mixtures; Author: Professor Dave Explains;https://www.youtube.com/watch?v=dggHWvFJ8Xs;License: Standard YouTube License, CC-BY