Question 42
A silver ornament of mass ‘m’ gram is polished with gold equivalent to $1 %$ of the mass of silver. Compute the ration of the number of atoms of gold and silver in the ornament.

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Solution

Mass of silver = m g
Mass of gold $= \frac{m}{100} g$
Atomic mass of Ag = 108 u
Atomic mass of Au = 197 u
Number of atoms of silver $= \frac{M a s s}{A t o m i c m a s s} \times N_{A}$ $= \frac{m}{108} \times N_{A}$
Number of atoms of gold $= \frac{m}{100 \times 197} \times N_{A}$
Ratio of number of atoms of gold to silver
$= A u : A g = \frac{m}{100 \times 197} \times N_{A} : \frac{m}{108} \times N_{A}$
$= 108 : 100 \times 197 = 108 : 19700 = 1 : 182.41$

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