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21 June, 04:44

How many g of silver chloride will be produced by reacting 10g of silver nitrate with sodium chloride?

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Answers (2)
  1. 21 June, 06:41
    0
    16.8 g of AgCl are produced

    Explanation:

    The reactants are: NaCl and AgNO₃

    The products are: AgCl, NaNO₃

    Balanced equation: NaCl (aq) + AgNO₃ (aq) → NaNO₃ (aq) + AgCl (s) ↓

    We convert the mass of AgNO₃ to moles → 10 g / 85g/mol = 0.117 moles

    Ratio is 1:1, therefore 0.117 moles of nitrate will produce 0.117 moles of AgCl.

    According to stoichiormetry.

    We convert the moles to mass → 0.117 mol. 143.3g / 1mol = 16.8 g
  2. 21 June, 08:18
    0
    8.44 grams of silver chloride will be produced

    Explanation:

    Step 1: Data given

    Mass of silver nitrate = 10.0 grams

    Molar mass of silver nitrate = 169.87 g/mol

    Molar mass of silver chloride = 143.32 g/mol

    Step 2: The balanced equation

    AgNO3 + NaCl → NaNO3 + AgCl

    Step 3: Calculate moles AgNO3

    Moles AgNO3 = mass AgNO3 / molar mass AgNO3

    Moles AgNO3 = 10.0 grams / 169.87 g/mol

    Moles AgNO3 = 0.0589 moles

    Step 4: Calculate moles AgCl

    For 1 mol AgNO3 we need 1 mol NaCl to produce 1 mol NaNO3 and 1 mol AgCl

    Step 5: Calculate mass AgCl

    Mass AgCl = moles AgCl * molar mass AgCl

    Mass AgCl = 0.0589 moles * 143.32 g/mol

    Mass AgCl = 8.44 grams

    8.44 grams of silver chloride will be produced
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