CHEMISTRY
2nd Edition
ISBN: 9781593995782
Author: OpenStax
Publisher: XANEDU PUBLISHING
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Textbook Question
Chapter 9, Problem 75E
What volume of oxygen a 423.0 K and a pressure of 127.4 kPa is produced by the decomposition of 129.7 g of
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Chapter 9 Solutions
CHEMISTRY
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What is the temperature of an 11.2-L sample of...Ch. 9 - À 2.50-L volume of hydrogen measured at —196 C is...Ch. 9 - A balloon inflated with three breaths of air has a...Ch. 9 - A weather balloon contains 8.80 moles of helium at...Ch. 9 - The volume of an automobile air bag was 66.8 L...Ch. 9 - How many moles of gaseous boron trifluoride, BF3,...Ch. 9 - Iodine, I2, is a solid at room temperature but...Ch. 9 - How many grams of gas are present in each of the...Ch. 9 - A high altitude balloon is filled with 1041104 L...Ch. 9 - A cylinder of medical oxygen has a volume of 3S.4...Ch. 9 - A large scuba tank (Figure 9.16) with a volume of...Ch. 9 - A 20.0-L cylinder containing 11.34 kg of butane,...Ch. 9 - While resting, the average 70-kg human male...Ch. 9 - For a given amount of gas showing ideal behavior,...Ch. 9 - A liter of methane gas, CH4, at STP contains more...Ch. 9 - The effect of chlorofluorocarbons (such as CCl2F2)...Ch. 9 - As 1 g of (lie radioactive element radium decays...Ch. 9 - A balloon that is 100.21 L at 21 C and 0.981 atm...Ch. 9 - If the temperature of a fixed amount of a gas is...Ch. 9 - If the volume of a fixed amount of a gas is...Ch. 9 - What is the density of laughing gas, dinitrogen...Ch. 9 - Calculate the density of Freon 12, CF2Cl2, at 30.0...Ch. 9 - Which is denser at the same temperature and...Ch. 9 - A cylinder of O2(g) used in breathing by emphysema...Ch. 9 - What is the molar mass of a gas if 0.0494 g of the...Ch. 9 - What is the molar mass of a gas if 0.281 g of the...Ch. 9 - How could you show experimentally that the...Ch. 9 - The density of a certain gaseous fluoride of...Ch. 9 - Consider this question: What is the molecular...Ch. 9 - A 36.0—L cylinder of a gas used for calibration of...Ch. 9 - A cylinder of a gas mixture used for calibration...Ch. 9 - A sample of gas isolated from unrefined petroleum...Ch. 9 - A mixture of 0.200 g of 1.00 g of and 0.820 g of...Ch. 9 - Most mixtures of hydrogen gas with oxygen gas are...Ch. 9 - A commercial mercury vapor analyzer can detect in...Ch. 9 - A sample of carbon monoxide was collected over...Ch. 9 - In an experiment in a general chemistry...Ch. 9 - Joseph Priestley first prepared pure oxygen by...Ch. 9 - Cavendish prepared hydrogen in 176G by the novel...Ch. 9 - The chlorofluorocarbon CCl2F2 can be recycled into...Ch. 9 - Automobile air bags are inflated with nitrogen...Ch. 9 - Lime, CaO, is produced by heating calcium...Ch. 9 - Before small batteries were available, carbide...Ch. 9 - Calculate the volume of oxygen required to burn...Ch. 9 - What volume of O2 at STP is required to oxidize...Ch. 9 - Consider the following questions: (a) What is the...Ch. 9 - Methanol, CH3OH, is produced industrially by the...Ch. 9 - What volume of oxygen a 423.0 K and a pressure of...Ch. 9 - A 230-L sample of a colorless gas at STP...Ch. 9 - Ethanol, C2H5OH, is produced industrially from...Ch. 9 - One molecule of hemoglobin will combine with four...Ch. 9 - A sample of a compound of xenon and fluorine was...Ch. 9 - One method of analyzing amino acids is the van...Ch. 9 - A balloon filled with helium gas is found to take...Ch. 9 - Explain why the numbers of molecules are not...Ch. 9 - Starting with the definition of rate of effusion...Ch. 9 - Heavy water, D2O (molar mass = 20.03 g mol-1). can...Ch. 9 - Which of the following gases diffuse more slowly...Ch. 9 - During the discussion of gaseous diffusion for...Ch. 9 - Calculate the relative rate of diffusion of 1H2...Ch. 9 - A gas of unknown identity diffuses at a rate of...Ch. 9 - When two cotton plugs. one moistened with ammonia...Ch. 9 - Using the postulates of the kinetic molecular...Ch. 9 - Can the speed of a given molecule in a gas double...Ch. 9 - Describe what happens o the average kinetic energy...Ch. 9 - The distribution of molecular velocities in a...Ch. 9 - What is the ratio of the average kinetic energy of...Ch. 9 - A 1-L sample of CO initially at STP is heated to...Ch. 9 - The root mean square speed of H2, molecules at 25...Ch. 9 - Answer the following questions: (a) Is the...Ch. 9 - Show that the ratio of the rate of diffusion of...Ch. 9 - Graphs showing the behavior of several different...Ch. 9 - Explain why the plot of PV for CO2 differs from...Ch. 9 - Under which of the following sets of conditions...Ch. 9 - Describe the factors responsible for the deviation...Ch. 9 - For which of the following gases should the...Ch. 9 - A 0.245-L flask contains 0.467 mol CO2 at 159 C....Ch. 9 - Answer the following questions: (a) If XX behaved...
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- Given that a sample of air is made up of nitrogen, oxygen, and argon in the mole fractions 0.78 N2, 0.21 O2, and 0.010 Ar, what is the density of air at standard temperature and pressure?arrow_forwardWhat volume, in milliliters, of hydrogen gas at 1.33 atm and 33 C is produced by the reaction of 0.0223 g lithium metal with excess water? The other product is LiOH.arrow_forwardYou have an equimolar mixture of the gases SO2 and O2, along with some He, in a container fitted with a piston. The density of this mixture at STP is 1.924 g/L. Assume ideal behavior and constant temperature and pressure. a. What is the mole fraction of He in the original mixture? b. The SO2 and O2 react to completion to form SO3. What is the density of the gas mixture after the reaction is complete?arrow_forward
- Hydrogen cyanide (HCN) is a poisonous gas. It can be formed by the following reaction: H+(aq)+NaCN(s)HCN(g)+Na+(aq)What volume of 6.00 M HCl is required to react with an excess of NaCN to produce enough HCN to fill a room 12119 feet at a pressure of 0.987 atm and 72F?arrow_forward5-114 Carbon dioxide gas, saturated with water vapor, can be produced by the addition of aqueous acid to calcium carbonate based on the following balanced net ionic equation: (a) How many moles of wet CO (g), collected at 60.°C and 774 torr total pressure, are produced by the complete reaction of 10.0 g of CaCO3 with excess acid? (b) What volume does this wet CO2 occupy? (c) What volume would the CO2 occupy at 774 torr if a desiccant (a chemical drying agent) were added to remove the water? The vapor pressure of water at 60.°C is 149.4 mm Hg.arrow_forwardperform stoichiometric ca1cu1uions for reactions involving gases as reactants or products.arrow_forward
- 54 One way to generate oxygen is to heat potassium chlorate, KClO3. (The other product is potassium chloride.) If 386 mL of oxygen at 41 C and 97.8 kPa is generated by this reaction, what is the minimum mass of KClO3used?arrow_forwardOne molecule of hemoglobin will combine with four molecules of oxygen. If 1.0 g of hemoglobin combines with 133 mL of oxygen at body temperature (37 C) and a pressure of 743 tort, what is the molar mass of hemoglobin?arrow_forwardSulfur trioxide, SO3, is produced in enormous quantities each year for use in the synthesis of sulfuric acid. S(s)+O2(g)SO2(g)2SO2(g)+O2(g)2SO3(g) What volume of O2(g) at 350.C and a pressure of 5.25 atm is needed to completely convert 5.00 g sulfur to sulfur trioxide?arrow_forward
- 51 What volume of oxygen at 24 C and 0.88 atm is needed to completely react via combustion with 45 g of methane gas?arrow_forwardIf 456 dm3 of krypton at 101 kPa and 21C is compressed into a 30.1-dm3 tank at the same temperature, what is the pressure of krypton in the tank?arrow_forwardTitanium(III) chloride is used in the manufacture of polyethylene. It is produced by the reaction (at high temperatures) between TiCl4 gas and H2. 2TiCl4(g)+H2(g)2TiCl3(s)+2HCl(g)Assume 100% yield and constant temperature and pressure. (a) How many liters of HCI gas can be produced by mixing 3.72 L of TiCl4 and 4.50 L of H2? (b) How many liters of reactant in excess are present after the reaction is complete?arrow_forward
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Step by Step Stoichiometry Practice Problems | How to Pass ChemistryMole Conversions Made Easy: How to Convert Between Grams and Moles; Author: Ketzbook;https://www.youtube.com/watch?v=b2raanVWU6c;License: Standard YouTube License, CC-BY