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30 March, 04:24

Iodine is prepared both in the laboratory and commercially by adding Cl 2 (g) Cl2 (g) to an aqueous solution containing sodium iodide. 2 NaI (aq) + Cl 2 (g) ⟶ I 2 (s) + 2 NaCl (aq) 2NaI (aq) + Cl2 (g) ⟶I2 (s) + 2NaCl (aq) How many grams of sodium iodide, NaI, NaI, must be used to produce 83.9 g 83.9 g of iodine, I 2?

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  1. 30 March, 06:30
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    The reaction of Chlorine with Sodium Iodide is given as;

    2NaI + Cl2 - I2 + 2NaCl

    The molar mass of iodine gas is 253.8089g/mol.

    The molar mass of Sodium Iodide is 149.89g/mol.

    The number of moles of I2 can be calculated as shown below;

    moles of I2 = Given mass (g) / molecular mass (g/mol).

    = 83.9g/253.8089g/mol.

    = 0.330mol

    In the above reaction, 2mol of NaI reacts with 1 mol of Cl to form 1 mol of I2 and 2 moles of NaCl.

    The number of moles of NaI would be;

    Number of moles of NaI = moles of I2 * 2 mol of NaI/1 mol of I2

    = 0.330mol * 2/1

    = 0.660mol

    Therefore, the mass of NaI needed would be;

    Mass of NaI = moles of NaI * molar mass of NaI

    = 0.660mol * 149.89g/mol

    = 98.92g

    The mass of Sodium Iodide required is 98.92g.
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