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14 August, 18:55

how do i Calculate the grams of silver chloride produced from 18.5 ml of 4.5M magnesium chloride with 99.2 ml of 1.75 M silver nitrate in a step by step?

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  1. 14 August, 21:27
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    4.21 g of AgCl

    3.06 g of BaCl₂ will be needed to complete the reaction

    Explanation:

    The first step is to determine the reaction.

    Reactants: BaCl₂ and AgNO₃

    The products will be the silver chloride (AgCl) and the Ba (NO₃) ₂

    The reaction is: BaCl₂ (aq) + 2AgNO₃ (aq) → 2AgCl (s) ↓ + Ba (NO₃) ₂ (aq)

    We determine the silver nitrate moles: 5 g. 1mol / 169.87 g = 0.0294 moles. Now, according to stoichiometry, we know that ratio is 2:2-

    2 moles of nitrate can produce 2 moles of chloride, so the 0.0294 moles of silver nitrate, will produce the same amount of chloride.

    We convert the moles to mass → 143.32 g / mol. 0.0294 mol = 4.21 g of AgCl.

    Now, we consider the BaCl₂.

    2 moles of nitrate can react to 1 mol of barium chloride

    Then, 0.0294 moles of silver nitrate will react to (0.0294. 1) / 2 = 0.0147 moles. We convert the moles to mass:

    0.0147 mol. 208.23 g / 1mol = 3.06 g of BaCl
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