\(CaCO_3\\ \%m_{Ca}=\dfrac{40}{40+12+3.16}.100=40\%\\ \%m_C=\dfrac{12}{40+12+16.3}.100=12\%\\ \Rightarrow\%m_O=100\%-\left(40\%+12\%\right)=48\%\\ H_2SO_4\\ \%m_H=\dfrac{2.1}{2.1+32+4.16}.100\approx2,041\%\\ \%m_S=\dfrac{32}{2.1+32+4.16}.100\approx32,653\%\\ \%m_O=\dfrac{4.16}{2.1+32+4.16}.100\approx65,306\%\\ Fe_2O_3\\ \%m_{Fe}=\dfrac{56.2}{56.2+16.3}.100=70\%\\ \Rightarrow\%m_O=100\%-70\%=30\%\)

CaCO₃
\(\%M_{\dfrac{Ca}{CaCO_3}}=\dfrac{40}{100}.100\%=40\%\)
\(\%M_{\dfrac{C}{CaCO_3}}=\dfrac{12}{100}.100\%=12\%\)
\(\%M_{\dfrac{O}{CaCO_3}}=100\%-\left(40\%+12\%\right)=48\%\)
H₂SO₄
\(\%M_{\dfrac{H_2}{H_2SO_4}}=\dfrac{2}{98}.100\%=2,04\%\)
\(\%M_{\dfrac{S}{H_2SO_4}}=\dfrac{32}{98}.100\%=32,65\%\)
\(\%M_{\dfrac{O}{H_2SO_4}}=100\%-\left(2,04\%+32,65\%\right)=65,31\%\)
Fe₂O3
\(\%M_{\dfrac{Fe}{Fe_2O_3}}=\dfrac{112}{160}.100\%=70\%\)
\(\%M_{\dfrac{O}{Fe_2O_3}}=100\%-70\%=30\%\)
 

\(PTK_{CaCO_3}=NTK_{Ca}+NTK_C+3.NTK_O=40+12+3.16=100\left(đ.v.C\right)\\ \%m_{Ca}=\dfrac{NTK_{Ca}}{PTK_{CaCO_3}}.100\%=\dfrac{40}{100}.100=40\%\\ \%m_C=\dfrac{NTK_C}{PTK_{CaCO_3}}.100\%=\dfrac{12}{100}.100=12\%\\ \%m_O=100\%-\left(\%m_{Ca}+\%m_C\right)=100\%-\left(40\%+12\%\right)=48\%\)

\(\%Ca=\dfrac{40.1}{56}.100\%=71,4\%\\ \%O=\dfrac{16.1}{56}.100\%=28,6\%\)

Đúng ko đấy

`a,` \(K.L.P.T_{Fe_2O_3}=56.2+16.3=160< amu>.\) 

\(\%Fe=\dfrac{56.2.100}{160}=70\%\)

\(\%O=100\%-70\%=30\%\)

`b,`\(K.L.P.T_{CaCO_3}=40+12+16.3=100< amu>.\)

\(\%Ca=\dfrac{40.100}{100}=40\%\)

\(\%C=\dfrac{12.100}{100}=12\%\) 

\(\%O=100\%-40\%-12\%=48\%\)

`c,` \(K.L.P.T_{HCl}=1+35,5=36,5< amu>.\)

\(\%H=\dfrac{1.100}{36,5}\approx2,74\%\)

\(\%Cl=100\%-2,74\%=97,26\%\)

a: \(\%Fe=\dfrac{56\cdot2}{56\cdot2+16\cdot3}=70\%\)

=>%O=30%

b: \(\%Ca=\dfrac{40}{40+12+16\cdot3}=40\%\)

\(\%C=\dfrac{12}{100}=12\%\)

%O=100%-12%-40%=48%

c: %H=1/36,5=2,74%

=>%Cl=97,26%

+) Trong H₂SO₄ có: \(\left\{{}\begin{matrix}\%m_H=\dfrac{2}{98}\cdot100\%\approx2,04\%\\\%m_S=\dfrac{32}{98}\cdot100\%\approx32,65\%\\\%m_O=65,31\%\end{matrix}\right.\)

+) Trong HNO₃ có: \(\left\{{}\begin{matrix}\%m_H=\dfrac{1}{63}\cdot100\%\approx1,59\%\\\%m_N=\dfrac{14}{63}\cdot100\%\approx22,22\%\\\%m_O=76,19\%\end{matrix}\right.\)

a)Ta có:\(m\%_H=\dfrac{2.100\%}{98}=2,04\%\)

        \(m\%_S=\dfrac{32.100\%}{98}=32,65\%\)

        \(m\%_O=100-2,04-32,65=65,31\%\)

b) tương tự

a)

\(m_C=\dfrac{52,15.46}{100}=24\left(g\right)=>n_C=\dfrac{24}{12}=2\left(mol\right)\)

\(m_H=\dfrac{13,04.46}{100}=6\left(g\right)=>n_H=\dfrac{6}{1}=6\left(mol\right)\)

\(m_O=46-24-6=16\left(g\right)=>n_O=\dfrac{16}{16}=1\left(mol\right)\)

=> CTHH: C₂H₆O

b) \(n_A=\dfrac{18,4}{46}=0,4\left(mol\right)\)

m_C = 12.0,4.2 = 9,6(g)

m_H = 1.0,4.6 = 2,4 (g)

m_O = 16.0,4.1 = 6,4 (g)

c) \(n_A=\dfrac{13,8}{46}=0,3\left(mol\right)\)

Số nguyên tử C = 2.0,3.6.10²³ = 3,6.10²³

Số nguyên tử H = 6.0,3.6.10²³ = 10,8.10²³

Số nguyên tử O = 1.0,3.6.10²³ = 1,8.10²³