Introductory Chemistry (5th Edition) (Standalone Book)
5th Edition
ISBN: 9780321910295
Author: Nivaldo J. Tro
Publisher: PEARSON
expand_more
expand_more
format_list_bulleted
Concept explainers
Textbook Question
Chapter 6, Problem 106E
Fingernail-polish remover is primarily acetone
How many acetone molecules are in a bottle of acetone with a volume of 325 mL?
Expert Solution & Answer
Want to see the full answer?
Check out a sample textbook solutionStudents have asked these similar questions
A chemist prepares a solution of aluminum sulfite (Al2(SO3)3) by measuring out 208. µmol of aluminum sulfite into a 450. mL volumetric flask and filling the
flask to the mark with water.
Calculate the concentration in mmol/L of the chemist's aluminum sulfite solution. Round your answer to 3 significant digits.
mmol
L
x10
X
Ś
?
oo
E
A
olo
Ar
8:
>>
Aspirin can be prepared from salicylic acid (C7H6O3 ), which has a molar mass of 138.12 g/mol,
and acetic anhydride (C4H,O3 ), which has a molar mass of 102.04 g/mol. The density of acetic
anhydride is 1.082 g/mL.
C7H6O3 + C4H;O3 → C,H§O4 + C2H3O2
What is the theoretical yield, in grams, of aspirin ( C9H3O4 ), which has a molar mass of 180.15
g/mol, possible when reacting 3.06 g of salicylic acid with 3.71 mL of acetic anhydride?
Type answer:
Aspirin can be prepared from salicylic acid (
C7H6O3 ), which has a molar mass of 138.12
g/mol, and acetic anhydride (C4H,O3 ), which
has a molar mass of 102.04 g/mol. The density
of acetic anhydride is 1.082 g/mL.
C7H6O3 + C4H, O3
→ C9H3 O4 + C2H4O2
What is the theoretical yield, in grams, of aspirin (
C9H3O4), which has a molar mass of 180.15
g/mol, possible when reacting 3.25 g of salicylic
acid with 3.56 mL of acetic anhydride?
Chapter 6 Solutions
Introductory Chemistry (5th Edition) (Standalone Book)
Ch. 6 - Q1. How many atoms are there in 5.8 mol helium?
a....Ch. 6 - A sample of pure silver has a mass of 155g How...Ch. 6 - How many carbon atoms are there in a 12.5kg sample...Ch. 6 - Q4. Which sample contains the greatest number of...Ch. 6 - Q5. What is the average mass (in grams) of a...Ch. 6 - Q6. How many moles of O are in 1.6 mol of?
1.6 mol...Ch. 6 - Q7. How many grams of Cl are in?
Ch. 6 - Q8. Which sample contains the greatest number of F...Ch. 6 - Q9. The compound is 35.8% A by mass. What mass of...Ch. 6 - Q10. Which compound has the highest mass percent...
Ch. 6 - What is the mass percent N in C2H8N2 ? a. 23.3% N...Ch. 6 - Q12. A compound is 52.14% C, 13.13% H, and 34.73%...Ch. 6 - A compound has the empirical formula CH2O and a...Ch. 6 - Prob. 14SAQCh. 6 - Why is chemical composition important?Ch. 6 - 2. How can you efficiently determine the number of...Ch. 6 - Prob. 3ECh. 6 - 4. How many molecules are in 1 mol of molecules?
Ch. 6 - 5. What is the mass of 1 mol of atoms for an...Ch. 6 - What is the mass of 1 mol of molecules for a...Ch. 6 - What is the mass of 1 mol of atoms of each...Ch. 6 - 8. What is the mass of 1 mol of molecules of each...Ch. 6 - 9. The subscripts in a chemical formula give...Ch. 6 - Write the conversion factors between moles of each...Ch. 6 - Prob. 11ECh. 6 - 12. What is the mathematical formula for...Ch. 6 - How are the empirical formula and the molecular...Ch. 6 - 14. Why is it important to be able to calculate an...Ch. 6 - 15. What is the empirical formula mass of a...Ch. 6 - 16. How are the molar mass and empirical formula...Ch. 6 - How many mercury atoms are in 5.8mol of mercury?Ch. 6 - How many moles of nitrogen atoms do 9.03 1023...Ch. 6 - How many atoms are in each elemental sample? a....Ch. 6 - How many moles of atoms are in each elemental...Ch. 6 - Complete the table. Element Moles Number of Atoms...Ch. 6 - 22. Complete the table.
Compound Moles Number of...Ch. 6 - Consider these definitions. 1 doz =12 1gross =144...Ch. 6 - 24. A pure copper penny contains approximately ...Ch. 6 - 25. How many moles of tin atoms are in a pure tin...Ch. 6 - 26. A lead fishing weight contains 0.12 mol of...Ch. 6 - 27. A pure gold coin contains 0.145 mol of gold....Ch. 6 - 28. A helium balloon contains 0.46 g of helium....Ch. 6 - How many moles of atoms are in each elemental...Ch. 6 - 30. What is the mass in grams of each elemental...Ch. 6 - Complete the table. Element Mole Mass Ne ____...Ch. 6 - Complete the table. Element Moles Mass Cr 0.00442...Ch. 6 - 33. Apure silver ring contains mmol (millmol) Ag....Ch. 6 - A pure gold ring contains 0.0102 mmol (millmol)...Ch. 6 - How many aluminum atoms are in 3.78 g of aluminum?Ch. 6 - 36. What is the mass of platinum atoms?
Ch. 6 - How many atoms are in each elemental sample? a....Ch. 6 - Calculate the mass in grams of each elemental...Ch. 6 - 39. How many carbon atoms are in a diamond (pure...Ch. 6 - 41. How many titanium atoms are in a pure titanium...Ch. 6 - 42. How many copper atoms are in a pure copper...Ch. 6 - 43. Complete the table.
Element Mass Moles Number...Ch. 6 - 44. Complete the table.
Element Mass Moles Number...Ch. 6 - Which sample contains the greatest number of...Ch. 6 - Which sample contains the greatest number of...Ch. 6 - 47. Determine the number of moles of molecules (or...Ch. 6 - 48. Determine the mass of each sample.
a. mol...Ch. 6 - 49. Complete the table.
Compound Mass Moles Number...Ch. 6 - 50. Complete the table.
Compound Mass Moles Number...Ch. 6 - A mothball, composed of naphthalene (C10H8), has a...Ch. 6 - Calculate the mass in grams of a single water...Ch. 6 -
53. How many molecules are in each sample?
a.
b....Ch. 6 - Prob. 54ECh. 6 - A normal bathtub has a capacity of 150 liters. How...Ch. 6 - A salt crystal has a mass of 0.12 mg. How many...Ch. 6 - How much money, in dollars, dose 1 mol of pennies...Ch. 6 - A typical dust particle has a diameter of about...Ch. 6 - 59. Determine the number of moles of in mol .
Ch. 6 - 60. How many moles of O are in mol ?
Ch. 6 - 61. Which sample contains the greatest number of...Ch. 6 - Prob. 62ECh. 6 - Determine the number of moles of C in each sample....Ch. 6 - Determine the number of moles of H in each sample....Ch. 6 - 65. For each set of molecular models, write a...Ch. 6 - 66. For each set of molecular models, write a...Ch. 6 - 67. How many grams of are in 38.0 g of each...Ch. 6 - 68. Calculate the number of grams of sodium in...Ch. 6 - Iron is found in Earths crust as several different...Ch. 6 - 70. Lead is found in Earth’s crust as several lead...Ch. 6 - A 2.45-g sample of strontium completely reacts...Ch. 6 - A 4.78-g sample of aluminum completely reacts with...Ch. 6 - A 1.912g sample of calcium chloride is decomposed...Ch. 6 - Prob. 74ECh. 6 - When crystallized from water, copper(II) sulfate...Ch. 6 - The purity of gold is measured in carats. A...Ch. 6 - In small amounts, the fluoride ion (often consumed...Ch. 6 - The iodide ion, usually consumed as potassium...Ch. 6 - Calculate the mass percent composition of oxygen...Ch. 6 - Calculate the mass percent composition of carbon...Ch. 6 - 81. Calculate the mass percent composition of each...Ch. 6 - 82. Calculate the mass percent composition of each...Ch. 6 - 83. Calculate the mass percent composition of O in...Ch. 6 - Calculate the mass percent composition of Cl in...Ch. 6 - Various iron ores have different amounts of iron...Ch. 6 - 86. Plats need nitrogen to grow, so many...Ch. 6 - Prob. 87ECh. 6 - Prob. 88ECh. 6 - 89. Samples of several compounds are decomposed,...Ch. 6 - Samples of several compounds are decomposed, and...Ch. 6 - 91. The rotten smell of a decaying animal carcass...Ch. 6 - 92. Citric acid, the compound responsible for the...Ch. 6 - 93. These compounds are found in many natural...Ch. 6 - 94. Calculate the empirical formula for each...Ch. 6 - 95. A sample of phosphorus burns in air and forms...Ch. 6 - A 2.241-g sample of nickel reacts with oxygen to...Ch. 6 - A sample of nitrogen reacts with chlorine to form...Ch. 6 - 98. A sample of phosphorus reacts with selenium...Ch. 6 - 99. A compound containing carbon and hydrgen has a...Ch. 6 - A sulfur-nitrogen ring compound has a molar mass...Ch. 6 - 101. The molar masses and empirical formulas of...Ch. 6 - The molar masses and empirical formulas of several...Ch. 6 - 103. A. pure copper cube has an edge length of...Ch. 6 - Prob. 104ECh. 6 - A drop of water has a volume of approximately 0.05...Ch. 6 - Fingernail-polish remover is primarily acetone...Ch. 6 - 107. Complete the...Ch. 6 - Prob. 108ECh. 6 - Determine the chemical formula of each compound...Ch. 6 - Prob. 110ECh. 6 - Prob. 111ECh. 6 - A particular brand of fertilizer contains 37.6 g...Ch. 6 - 113. A leak in the air conditioning system of an...Ch. 6 - 114. A leak in the air conditioning system of an...Ch. 6 - 115. Hydrogen is a possible future fuel. However,...Ch. 6 - Prob. 116ECh. 6 - Complete the table of compounds that contain only...Ch. 6 - 118. Complete the table of compounds that contain...Ch. 6 - Butanedione, a component of butter and body odor,...Ch. 6 - 120. Caffeine, a stimulant found in coffee and...Ch. 6 - 121. Nicotine, a stimulant found tobacco, has the...Ch. 6 - Prob. 122ECh. 6 - 123. A sample contains both KBr and KI in unknown...Ch. 6 - Prob. 124ECh. 6 - Ethanethiol (C2H6S) is a compound with a...Ch. 6 - 126. Methanethiol has a disagreeable odor and is...Ch. 6 - Prob. 127ECh. 6 - Prob. 128ECh. 6 - you can use the concepts in this chapter to obtain...Ch. 6 - Prob. 130ECh. 6 - 131. In 1996, the media reported that possible...Ch. 6 - 132. Using grammatically correct English...
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
- A soft drink contains an unknown mass of citric acid, C3H5O(COOH)3. It requires 6.42 mL of 9.580 × 10−2-M NaOH to neutralize the citric acid in 10.0 mL of the soft drink. C3H5O(COOH)3(aq) + 3 NaOH(aq) → Na3C3H5O(COO)3(aq) + 3 H2O(ℓ) Determine which step in these calculations for the mass of citric acid in 1 mL soft drink is incorrect? Why? n (NaOH) = (6.42 mL)(1L/1000 mL)(9.580 × 10−2 mol/L) n (citric acid) = (6.15 × 10−4 mol NaOH) × (3 mol citric acid/1 mol NaOH) m (citric acid in sample) = (1.85 × 10−3 mol citric acid) × (192.12 g/mol citric acid) m (citric acid in 1 mL soft drink) = (0.354 g citric acid)/(10 mL soft drink) Determine the correct result.arrow_forward4-102 Aspartame, an artificial sweetener used as a sugar substitute in some foods and beverages, has the molecular formula C14H18N2O5. (a) How many mg of aspartame are present in 3.72 × 1026 molecules of aspartame? (b) Imagine you obtain 25.0 mL of aspartame, which is known to have a density of 1.35 g/mL. How many molecules of aspartame are present in this volume? (c) How many hydrogen atoms are present in 1.00 mg of aspartame? (d) Complete the skeletal structure of aspartame, where all the bonded atoms are shown but double bonds, triple bonds, and/or lone pairs are missing. (e) Identify the various types of geometries present in each central atom of aspartame using VSEPR theory. (f) Determine the various relative bond angles associated with each central atom of aspartame using VSEPR theory. (g) What is the most polar bond in aspartame? (h) Would you predict aspartame to be polar or nonpolar? (i) Is aspartame expected to possess resonance? Explain why or why not. (j) Consider the combustion of aspartame, which results in formation of NO2(g) as well as other expected products. Write a balanced chemical equation for this reaction. (k) Calculate the weight of C02(g) that can be prepared from 1.62 g of aspartame mixed with 2.11 g of oxygen gas.arrow_forwardA Menthol, from oil of mint, has a characteristic odor. The compound contains only C, H, and O. If 95.6 mg of menthol burns completely in O2, and gives 269 mg of CO2 and 111 mg of H2O, what is the empirical formula of menthol?arrow_forward
- A student wants to prepare 1.00 L of a 1.00-M solution of NaOH (molar mass = 40.00 g/mol). If solid NaOH is available, how would the student prepare this solution? If 2.00 M NaOH is available, how would the student prepare the solution? To help ensure three significant figures in the NaOH molarity, to how many significant figures should the volumes and mass be determined?arrow_forward94. Baking soda (sodium hydrogen carbonate. NaHCO3) is often used to neutralize spills of acids on the benchtop in the laboratory. What mass of NaHCO3 would be needed to neutralize a spill consisting of 25.2 mL of 6.01 M hydrochloric acid solution?arrow_forwardThe present average concentration (mass percent) of magnesium ions in seawater is 0.13%. A chemistry textbook estimates that if 1.00 × 108 tons Mg were taken out of the sea each year, it would take one million years for the Mg concentration to drop to 0.12%. Do sufficient calculations to either verify or refute this statement. Assume that Earth is a sphere with a diameter of 8000 mi, 67% of which is covered by oceans to a depth of 1 mi, and that no Mg is washed back into the oceans at any time.arrow_forward
- 4-53 A typical deposit of cholesterol, C27H46O, in an artery might have a mass of 3.9 mg. How many mol ecules of cholesterol are in this mass?arrow_forwardTwo general chemistry students working together in the lab weigh out 0.832 g of CaCl2 2 H2O into a crucible. After heating the sample for a short time and allowing the crucible to cool, the students determine that the sample has a mass of 0.739 g. They then do a quick calculation. On the basis of this calculation, what should they do next? (a) Congratulate themselves on a job well done. (b) Assume the bottle of CaCl2 2 H2O was mislabeled; it actually contained something different. (c) Heat the crucible again, and then reweigh it.arrow_forward35. For each of the following solutions, the mass of solute is given, followed by the total volume of the solution prepared. Calculate the molarity of each solution. a. 3.51 g NaCl: 25 mL c. 3.51 g NaCl: 75 mL b. 3.51 g NaCl; 50. mL d. 3.51 g NaCl; l.00 Larrow_forward
- You want to prepare a 1.0 mol/kg solution of ethyleneglycol, C2H4(OH)2, in water. Calculate the mass of ethylene glycol you would need to mix with 950. g water.arrow_forwardStarting with the solid and adding water, how would you prepare 2.00 L of 0.685 M (a) Ni(NO3)2? (b) CuCl2? (c) C6H8O6 (vitamin C)?arrow_forwardAspirin can be prepared from salicylic acid ( C7H,O3), which has a molar mass of 138.12 g/mol, and acetic anhydride (C4H6O3), which has a molar mass of 102.04 g/mol. The density of acetic anhydride is 1.082 g/mL. C7H6O3 + C4H,O3 → → C9H3O4 + C2H3O2 What is the theoretical yield, in grams, of aspirin (C9H3O4), which has a molar mass of 180.15 g/mol, possible when reacting 3.06 g of salicylic acid with 3.66 mL of acetic anhydride? Туре answer:arrow_forward
arrow_back_ios
SEE MORE QUESTIONS
arrow_forward_ios
Recommended textbooks for you
- Introduction to General, Organic and BiochemistryChemistryISBN:9781285869759Author:Frederick A. Bettelheim, William H. Brown, Mary K. Campbell, Shawn O. Farrell, Omar TorresPublisher:Cengage LearningChemistry & Chemical ReactivityChemistryISBN:9781337399074Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage LearningChemistry & Chemical ReactivityChemistryISBN:9781133949640Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage Learning
- Introductory Chemistry: A FoundationChemistryISBN:9781337399425Author:Steven S. Zumdahl, Donald J. DeCostePublisher:Cengage LearningChemistry for Engineering StudentsChemistryISBN:9781337398909Author:Lawrence S. Brown, Tom HolmePublisher:Cengage LearningChemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage Learning
Introduction to General, Organic and Biochemistry
Chemistry
ISBN:9781285869759
Author:Frederick A. Bettelheim, William H. Brown, Mary K. Campbell, Shawn O. Farrell, Omar Torres
Publisher:Cengage Learning
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Introductory Chemistry: A Foundation
Chemistry
ISBN:9781337399425
Author:Steven S. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Chemistry for Engineering Students
Chemistry
ISBN:9781337398909
Author:Lawrence S. Brown, Tom Holme
Publisher:Cengage Learning
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Bonding (Ionic, Covalent & Metallic) - GCSE Chemistry; Author: Science Shorts;https://www.youtube.com/watch?v=p9MA6Od-zBA;License: Standard YouTube License, CC-BY
Stoichiometry - Chemistry for Massive Creatures: Crash Course Chemistry #6; Author: Crash Course;https://www.youtube.com/watch?v=UL1jmJaUkaQ;License: Standard YouTube License, CC-BY