Chemistry Gas Law <- Combined gas law, Dalton’s law and Downward displacement, Graham’s Law, Gas Stoichiometry, Coulombs Law, and Gibbs Free energy Quiz

Combined gas law, Dalton’s law and Downward displacement, Graham’s Law, Gas Stoichiometry, Coulombs Law, and Gibbs Free energy Quiz

Combined gas law, Dalton’s law and Downward displacement, Graham’s Law, Gas Stoichiometry, Coulombs Law, and Gibbs Free energy Quiz

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A gas occupies a volume of 3.00 L at a pressure of 2.00 atm and a temperature of 300 K. If the gas is compressed to a volume of 1.50 L and heated to 450 K, what will the final pressure of the gas be?

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A mixture of gases contains oxygen, nitrogen, and carbon dioxide. The partial pressures are as follows: oxygen = 0.60 atm, nitrogen = 0.30 atm, and carbon dioxide = 0.10 atm. What is the total pressure of the gas mixture?

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How much faster does hydrogen gas (molar mass = 2 g/mol) diffuse compared to oxygen gas (molar mass = 32 g/mol)?

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If 10.0 g of methane gas (\(\text{CH}_4\)) reacts with excess oxygen, how many liters of \(\text{CO}_2\) are produced at STP?

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Two charges of \(+2.0\,\mu\text{C}\) and \(-3.0\,\mu\text{C}\) are placed 0.05 m apart. What is the magnitude of the force between them? (, \(k = 8.99 \times 10^9\,\text{N}\,\text{m}^2/\text{C}^2\))

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Calculate the Gibbs free energy change (\(\Delta G\)) for a reaction at 298 K where \(\Delta H = -150\,\text{kJ/mol}\) and \(\Delta S = -200\,\text{J/mol}\,\text{K}\).

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A 2.50 L sample of a gas at 1.20 atm and 298 K is compressed to 1.00 L at constant temperature. What will be the final pressure? (Use Boyle's Law as part of the Combined Gas Law)

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A mixture of gases contains hydrogen (0.40 atm), helium (0.50 atm), and argon (0.10 atm). What fraction of the total pressure is due to helium? (Use Dalton's law)

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An unknown gas diffuses 1.5 times faster than oxygen gas. What is the molar mass of the unknown gas? (Use Graham's Law)

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What is the volume of ammonia gas (\(\text{NH}_3\)) produced at STP when 20.0 g of nitrogen gas (\(\text{N}_2\)) reacts with excess hydrogen gas? (Use gas stoichiometry)

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A gas occupies 5.00 L at 300 K and 2.50 atm. What volume will it occupy if the pressure is reduced to 1.50 atm and the temperature is increased to 350 K? (Use the combined gas law)

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The partial pressure of oxygen in a gas mixture is 0.40 atm, and the total pressure is 1.60 atm. What is the mole fraction of oxygen? (Use Dalton's Law)

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An unknown gas diffuses 2.0 times slower than helium gas. What is the molar mass of the unknown gas? (Use Graham's Law)

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How many liters of hydrogen gas (\(\text{H}_2\)) are needed at STP to produce 10.0 g of ammonia (\(\text{NH}_3\))? (Use gas stoichiometry)

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Calculate the magnitude of the electrostatic force between two charges, \(+3.0\,\mu\text{C}\) and \(-2.0\,\mu\text{C}\), separated by 0.20 m. (Use Coulomb's Law, \(k = 8.99 \times 10^9\,\text{N}\,\text{m}^2/\text{C}^2\))

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A gas occupies 6.00 L at 400 K and 1.20 atm. If the volume is increased to 9.00 L and the pressure drops to 0.80 atm, what will the new temperature be? (Use the combined gas law)

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A mixture contains nitrogen gas (0.60 atm), oxygen gas (0.20 atm), and argon gas (0.40 atm). What is the partial pressure of oxygen gas if the total pressure increases to 2.00 atm while maintaining the same mole fraction? (Use Dalton's Law)

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A gas diffuses 3.0 times slower than hydrogen gas (\(\text{H}_2\)). What is the molar mass of the gas? (Use Graham's Law)

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How many liters of \(\text{CO}_2\) gas are produced at STP when 15.0 g of methane (\(\text{CH}_4\)) burns in excess oxygen? (Use gas stoichiometry)

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Two charges, \(+1.0\,\mu\text{C}\) and \(-2.0\,\mu\text{C}\), are separated by 0.50 m. What is the magnitude of the force between them? (Use Coulomb's Law, \(k = 8.99 \times 10^9\,\text{N}\,\text{m}^2/\text{C}^2\))

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Calculate \(\Delta G\) at 298 K for a reaction where \(\Delta H = -250\,\text{kJ/mol}\) and \(\Delta S = -300\,\text{J/mol}\,\text{K}\).

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