\(a,M_{NH_4NO_3}=14+4+14+16.3=80(g/mol)\\ \begin{cases} \%_{N}=\dfrac{14.2}{80}.100\%=35\%\\ \%_{H}=\dfrac{4}{80}.100\%=5\%\\ \%_{O}=100\%-35\%-5\%=60\% \end{cases} \)
\(b,M_{(NH_4)_2SO_4}=(14+4).2+32+16.4=132(g/mol)\\ \begin{cases} \%_{N}=\dfrac{14.2}{132}.100\%=21,21\%\\ \%_{H}=\dfrac{8}{132}.100\%=6,06\%\\ \%_{S}=\dfrac{32}{132}.100\%=24,24\%\\ \%_{O}=100\%-21,21\%-6,06\%-24,24=48,49\% \end{cases} \)
\(c,M_{(NH_2)_2CO}=14.2+4+12+16=60(g/mol)\\ \begin{cases} \%_{N}=\dfrac{14.2}{60}.100\%=46,67\%\\ \%_{H}=\dfrac{4}{60}.100\%=6,67\%\\ \%_{C}=\dfrac{12}{60}.100\%=20\%\\ \%_{O}=100\%-20\%-46,67\%-6,67\%=26,66\% \end{cases} \)
