[tex]\mathcal M_{CuCl_2\cdot nH_2O}=A_{Cu}+2\cdot A_{Cl}+n\cdot (2\cdot A_H+A_O)=64+2\cdot 35,5+n(\cdot 2\cdot 1+16)=(135+18n)\frac{g}{mol}[/tex]
In (135+18n)g CuCl₂·nH₂O............. 64g Cu
In 100g CuCl₂·nH₂O........................37,42g Cu
[tex]\dfrac{135+18n}{100}=\dfrac{64}{37,42} \implies 135+18n=\dfrac{64\cdot 100}{37,42} =171,03g[/tex]
[tex]135+18n=171,03 \implies 18n=171,03-135=36,03\\18n=36,03|:18\\n=2[/tex]
=> b) 2
