Ask Question
9 July, 06:26

How many molecules of O2 are present in a 3.90L flask at a temperature of 273K and a pressure of 1.00 atm

+2
Answers (1)
  1. 9 July, 06:48
    0
    Given:

    Volume of O2, V = 3.90 L

    Temperature of O2, T = 273 K

    Pressure P = 1.00 atm

    To determine:

    Molecules of O2

    Explanation:

    From Ideal gas law-

    PV = nRT

    where n = number of moles of O2

    R = gas constant = 0.0821 L atm/mol-K

    n = PV/RT = 1*3.90/0.0821*273 = 0.1740 moles of O2

    1 mole of O2 contains 6.023 * 10²³ molecules

    0.1740 moles of O2 corresponds to:

    =6.023 * 10²³ molecules*0.1740 moles of O2/1 mole of O2

    = 1.048 * 10²³ molecules of O2
Know the Answer?
Not Sure About the Answer?
Get an answer to your question ✅ “How many molecules of O2 are present in a 3.90L flask at a temperature of 273K and a pressure of 1.00 atm ...” in 📙 Chemistry if there is no answer or all answers are wrong, use a search bar and try to find the answer among similar questions.
Search for Other Answers