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30 August, 20:20

What mass of chromium would be produced from the reaction of 57.0 g of potassium with 199 g of chromium (II) bromide according to the following reaction? 2 K + CrBr2 2 KBr + Cr

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  1. 30 August, 21:20
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    Mass of Chromium produced = 37.91 grams

    Explanation:

    2K + CrBr₂ → 2KBr + Cr

    2mole 1 mole 1 mole

    mass of Potassium = 57.0 grams

    molar mass of Potassium = 39.1 g/mol

    no of moles of Potassium = 57.0 / 39.1 = 1.458 moles

    mass of CrBr₂ = 199 grams

    molar mass of CrBr₂ = 211.8 gram/mole

    no of moles of CrBr₂ = 199 / 211.8 = 0.939 mole

    From chemical equation

    1 mole of CrBr₂ = 2 moles of K

    ∴ 0.939 moles of CrBr₂ = ?

    ⇒ 0.939 x 2/1 = 1.878 moles of K

    1.878 moles of K is needed, but there is 1.458 moles of K. So, Potassium is completed first during the reaction. Hence, Potassium is limiting reagent. and CrBr₂ is excess reagent.

    From chemical equation

    2 moles of K = 1 mole of Cr

    ∴ 1.458 moles of K = ?

    ⇒ 1.458 x 1 / 2 = 0.729 moles of Cr

    no of moles of Cr formed = 0.729 moles

    molar mass of Cr = 52.0 g/mol

    mass of one mole of Cr = 52.0 grams

    mass of 0.729 moles of Cr = 52.0 x 0.729 = 37.908 grams

    mass of Chromium produced = 37.91 grams
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