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1 July, 02:34

What mass of silver chloride can be produced from 1.27L of a 0.156M solution of silver nitrate?

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  1. 1 July, 02:58
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    m AgCl = 28.395 g

    Explanation:

    AgNO3 (aq) + NaCl (aq) → AgCl (s) + NaNO3 (aq)

    ∴ [AgNO3] = 0.156 mol/L

    ∴ V = 1.27L

    ⇒ mol AgNO3 = 0.156 mol/L * 1.27 L = 0.19812 mol AgNO3

    mass AgCL:

    ⇒ m AgCl = 0.19812 mol AgNO3 * mol AgCl/molAgNO3 * 143.32gAgCl/molAgCl

    ⇒ m AgCl = 28.395 g
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