Answer :
moles Cl⁻ : 0.00197
mass NaCl : 0.115
% purity : 95.83%
Further explanation
Molarity shows the number of moles of solute in every 1 liter of solute or mmol in each ml of solution
[tex]\large \boxed {\bold {M ~ = ~ \dfrac {n} {V}}}[/tex]
Where
M = Molarity
n = Number of moles of solute
V = Volume of solution
So to find the number of moles can be expressed as
n = V x M
- mol Cl⁻
Reaction
AgNO₃ + NaCl ⇒ AgCl + NaNO₃
Molarity(concentration) of AgNO₃ = 0.1 mol/dm³(L) = 0.1 M
Volume=V of AgNO₃ = 19.7 ml(cm³)
so mol of AgNO₃ :
[tex]\tt mol=M\times V\\\\mol=0.1~mol/L\times 0.0197~L\\\\mol=0.00197[/tex].
From the equation, mol ratio AgNO₃ : NaCl = 1 ; 1, so mol NaCl= mol AgNO₃= 0.00197
NaCl⇒Na⁺+Cl⁻
mol Cl⁻ : mol NaCl = 1 : 1, mol Cl⁻ = 0.00197
- mass NaCl (MW=58.5 g/mol) :
[tex]\tt mass=mol\times MW\\\\mass= 0.00197\times 58.5=0.115~g[/tex]
- % purity :
[tex]\tt \%purity=\dfrac{mass~NaCl}{mass~rock}\times 100\%\\\\\%purity=\dfrac{0.115}{0.12}\times 100\%=95.83\%[/tex]