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2 July, 08:53

How many molecules of sodium nitrate are produced when 17 g of sodium azide, NaN3, react according to the following equation:

NaN3 (aq) + AgNO3 (aq) - --> AgN3 (s) + NaNO3 (aq)

Question options:

3.7x1023

1.6 x 1023

1.85x1023

6.02x1023

+4
Answers (1)
  1. 2 July, 09:01
    0
    The number of molecules of sodium nitrate that reacted is

    1.6 x10^23 molecules

    calculation

    NaN₃ (aq) + AgNO₃ (aq) → AgN₃ (s) + NaNo₃ (aq)

    step 1: find moles of NaN₃

    moles = mass:molar mass

    from periodic table the molar mass of NaN₃ = 23 + (3 x 14) = 65 g/mol

    moles = 17 g:65 g/mol = 0.262 moles

    Step 2: use the mole ratio to calculate the moles of NaNO₃

    NaN₃:NaNO₃ is 1:1

    Therefore the moles of NaNO₃ is also = 0.262 moles

    Step 3: use the Avogadro's law constant to calculate the number of molecules of NaNO₃

    That is according to Avogadro's law

    1 mole = 6.02 x10^23 molecules

    0.262 moles=? molecules

    by cross multiplication

    =[ (0.262 moles x 6.02 x10^23 molecules) / 1 mole] = 1.6 x10^23 molecules
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