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13 January, 13:26

Ammonia (NH3) can be produced by the reaction of hydrogen gas with nitrogen gas:

3H2 + N2→2NH3

A chemist reacts 2.00 mol H2 with excess N2. The reaction yields 0.13 mol NH3.

What is the percent yield of the reaction?

10%

40%

60%

80%

10 percent is correct

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Answers (1)
  1. 13 January, 14:22
    0
    10%

    Explanation:

    Given dа ta:

    Actual yield = 0.13 moles

    Percent yield = ?

    Solution:

    Balanced chemical equation.

    3H₂ + N₂ → 2NH₃

    First of all we will calculate the mass of given moles of ammonia.

    Number of moles = mass / molar mass

    Mass = 0.13 * 17 g/mol

    Mass = 2.21 g

    2.21 g is experimental yield of ammonia.

    Hydrogen is limiting reactant because only two moles of hydrogen present.

    we will compare the moles of hydrogen and ammonia from balance chemical equation.

    H₂ : NH₃

    3 : 2

    2 : 2/3*2 = 1.33 moles

    Mass of ammonia

    Mass = number of moles * molar mass

    Mass = 1.33 mol * 17 g/mol

    Mass = 22.61 g

    Percent yield:

    Percent yield = actual yield / theoretical yield * 100

    Percent yield = 2.21 g / 22.61 g

    Percent yield = 9.8% which is almost 10%
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