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4 May, 04:19

How many liters of fluorine gas, at standard temperature and pressure, will react with 23.5 grams of potassium metal? Show all of the work used to solve this problem.

2K + F2 yields 2KF

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  1. 4 May, 06:23
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    Hope it cleared your doubt
  2. 4 May, 07:22
    0
    Potassium 23.5g/39.0983g/mol = 0.601mol

    The Ratio of reactants is 2 to 1 so (0.601mol) / 2 = 0.3005mol

    Therefore 0.3005mol of F2 is needed to find liters use

    formula V = nRT/P (V) Volume = 22.41L

    (T) Temperature = 273K or 0.0 Celsius

    (P) Pressure = 1.0atm

    (R) value is always. 08206 with atm n = 0.3005moles (273) (.08206) (0.3005) / 1 = V V = 6.7319 Liters
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