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8 April, 07:57

What is the limiting reactant if 8 g of Ba reacts with 2.8 g of Al2 (SO4) 3?

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  1. 8 April, 08:20
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    Al2 (SO4) 3 is the limiting reactant

    Explanation:

    We'll begin by writing the balanced equation for the reaction. This is illustrated below:

    3Ba + Al2 (SO4) 3 → 2Al + 3BaSO4

    Next, we shall determine the mass of Ba and the mass of Al2 (SO4) 3 that reacted from the balanced equation. This is illustrated below:

    Molar mass of Ba = 137g/mol

    Mass of Ba from the balanced equation = 3 x 137 = 411g

    Molar mass of Al2 (SO4) 3 = 2x27 + 3[32 + (16x4) ]

    = 54 + 3[32 + 64]

    = 54 + 3[96]

    = 54 + 288 = 342g/mol

    Mass of Al2 (SO4) 3 from the balanced equation = 1 x 342 = 342g

    Summary:

    From the balanced equation above,

    411g of Ba reacted with 342g of Al2 (SO4) 3.

    Finally, we shall determine the limiting reactant as follow:

    From the balanced equation above,

    411g of Ba reacted with 342g of Al2 (SO4) 3.

    Therefore, 8g of Ba will react with

    = (8 x 342/411 = 6.66g of Al2 (SO4) 3.

    From the calculations made above, we can see that it will take a higher mass of Al2 (SO4) 3 i. e 6.66g than what was given i. e 2.8g to react completely with 8g of Ba.

    Therefore, Al2 (SO4) 3 is the limiting reactant and Ba is the excess reactant.
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