Graham's law scenario: If Gas A has half the molar mass of Gas B, what is Rate A / Rate B according to Graham's law?

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Study for the ACS Organic Chemistry Exam. Explore multiple choice questions with hints and detailed explanations. Get prepared for your test!

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Graham's law scenario: If Gas A has half the molar mass of Gas B, what is Rate A / Rate B according to Graham's law?

Graham's law states that the rate of effusion (or diffusion) of a gas is inversely proportional to the square root of its molar mass: rate ∝ 1/√M. If Gas A has half the molar mass of Gas B, then M_A = 0.5 M_B, so rate_A / rate_B = (1/√M_A) / (1/√M_B) = √(M_B/M_A) = √2 ≈ 1.414. Gas A, being lighter, effuses faster, about 1.41 times as fast as Gas B.

Graham's law scenario: If Gas A has half the molar mass of Gas B, what is Rate A / Rate B according to Graham's law?

Study for the ACS Organic Chemistry Exam. Explore multiple choice questions with hints and detailed explanations. Get prepared for your test!

Graham's law scenario: If Gas A has half the molar mass of Gas B, what is Rate A / Rate B according to Graham's law?

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