Cho a(g) Na tác dụng 0.2 mol alcl3 tao ra 7.8g kết tủa tính a(g) 11/08/2021 Bởi Autumn Cho a(g) Na tác dụng 0.2 mol alcl3 tao ra 7.8g kết tủa tính a(g)
$Na+H_2O\to NaOH+H_2$ $\Rightarrow n_{NaOH}=n_{Na}$ $n_{Al(OH)_3}=\dfrac{7,8}{78}=0,1(mol)<n_{AlCl_3}$ * TH1: dư $AlCl_3$ $AlCl_3+3NaOH\to Al(OH)_3+3NaCl$ $\Rightarrow n_{NaOH}=0,1.3=0,3(mol)=n_{Na}$ $\to a=0,3.23=6,9g$ * TH2: $Al(OH)_3$ tan 1 phần $AlCl_3+3NaOH\to Al(OH)_3+3NaCl$ (1) $n_{NaOH(1)}=0,2.3=0,6(mol)$ $n_{Al(OH)_3(1)}=0,2(mol)$ $\Rightarrow n_{Al(OH)_3(2)}=0,2-0,1=0,1(mol)$ $Al(OH)_3+NaOH\to NaAlO_2+2H_2O$ (2) $\Rightarrow n_{NaOH(2)}=0,1(mol)$ $\sum n_{NaOH}=0,1+0,6=0,7(mol)=n_{Na}$ $\to a=0,7.23=16,1g$ Bình luận
Đáp án: \(a = {m_{Na}} = 16,1g\) Giải thích các bước giải: \(\begin{array}{l}Na + {H_2}O \to NaOH + \dfrac{1}{2}{H_2}\\3NaOH + AlC{l_3} \to Al{(OH)_3} + 3NaCl\\{n_{Al{{(OH)}_3}}} = 0,1mol\\{n_{AlC{l_3}}} = 0,2mol\\ \to {n_{Al{{(OH)}_3}}} = {n_{AlC{l_3}}} = 0,2mol > 0,1mol\end{array}\) Suy ra kết tủa tan 1 phần \(\begin{array}{l}Al{(OH)_3} + NaOH \to NaAl{O_2} + 2{H_2}O\\{n_{Al{{(OH)}_3}}}tan= 0,2 – 0,1 = 0,1mol\\ \to {n_{NaOH}} = {n_{Al{{(OH)}_3}}}tan= 0,1mol\\ \to {n_{NaOH}} = 3{n_{AlC{l_3}}} = 0,6mol\\ \to {n_{NaOH}} = 0,6 + 0,1 = 0,7mol\\ \to {n_{Na}} = {n_{NaOH}} = 0,7mol\\ \to a = {m_{Na}} = 16,1g\end{array}\) Bình luận
$Na+H_2O\to NaOH+H_2$
$\Rightarrow n_{NaOH}=n_{Na}$
$n_{Al(OH)_3}=\dfrac{7,8}{78}=0,1(mol)<n_{AlCl_3}$
* TH1: dư $AlCl_3$
$AlCl_3+3NaOH\to Al(OH)_3+3NaCl$
$\Rightarrow n_{NaOH}=0,1.3=0,3(mol)=n_{Na}$
$\to a=0,3.23=6,9g$
* TH2: $Al(OH)_3$ tan 1 phần
$AlCl_3+3NaOH\to Al(OH)_3+3NaCl$ (1)
$n_{NaOH(1)}=0,2.3=0,6(mol)$
$n_{Al(OH)_3(1)}=0,2(mol)$
$\Rightarrow n_{Al(OH)_3(2)}=0,2-0,1=0,1(mol)$
$Al(OH)_3+NaOH\to NaAlO_2+2H_2O$ (2)
$\Rightarrow n_{NaOH(2)}=0,1(mol)$
$\sum n_{NaOH}=0,1+0,6=0,7(mol)=n_{Na}$
$\to a=0,7.23=16,1g$
Đáp án:
\(a = {m_{Na}} = 16,1g\)
Giải thích các bước giải:
\(\begin{array}{l}
Na + {H_2}O \to NaOH + \dfrac{1}{2}{H_2}\\
3NaOH + AlC{l_3} \to Al{(OH)_3} + 3NaCl\\
{n_{Al{{(OH)}_3}}} = 0,1mol\\
{n_{AlC{l_3}}} = 0,2mol\\
\to {n_{Al{{(OH)}_3}}} = {n_{AlC{l_3}}} = 0,2mol > 0,1mol
\end{array}\)
Suy ra kết tủa tan 1 phần
\(\begin{array}{l}
Al{(OH)_3} + NaOH \to NaAl{O_2} + 2{H_2}O\\
{n_{Al{{(OH)}_3}}}tan= 0,2 – 0,1 = 0,1mol\\
\to {n_{NaOH}} = {n_{Al{{(OH)}_3}}}tan= 0,1mol\\
\to {n_{NaOH}} = 3{n_{AlC{l_3}}} = 0,6mol\\
\to {n_{NaOH}} = 0,6 + 0,1 = 0,7mol\\
\to {n_{Na}} = {n_{NaOH}} = 0,7mol\\
\to a = {m_{Na}} = 16,1g
\end{array}\)