Câu 1:
a) $C{H_3} - C{H_2} - C{H_2} - C{H_2}OH + CuO\xrightarrow{{{t^o}}}C{H_3} - C{H_2} - C{H_2} - CHO + Cu + {H_2}O$
b) ${C_6}{H_5}OH + 3B{r_2} \to {C_6}{H_2}B{r_3}OH + 3HBr$
c) $nC{H_2} = CH - CH = C{H_2}\xrightarrow{{{t^o},xt,p}}{\left( { - C{H_2} - CH = CH - C{H_2} - } \right)_n}$
d) $HCHO + 4AgN{O_3} + 6N{H_3} + 2{H_2}O \to {(N{H_4})_2}C{O_3} + 4Ag + 4N{H_4}N{O_3}$
e) $C{l_2} + C{H_3} - C{H_2} - C{H_3}\xrightarrow{{as}}C{H_3} - C{H_2} - C{H_2}Cl + HCl$
g) $C{H_2} = CH - C{H_3} + {H_2}O\xrightarrow{{{H^ + }}}C{H_3} - CH(OH) - C{H_3}$
i) $C{H_3} - C{H_2} - OH\xrightarrow[{{{170}^o}C}]{{{H_2}S{O_4}}}C{H_2} = C{H_2} + {H_2}O$
k) $C{H_3}COOH + {C_2}{H_5}OH\underset{{{t^o}}}{\overset{{{H_2}S{O_4}}}{\longleftrightarrow}}C{H_3}COO{C_2}{H_5} + {H_2}O$
Câu 2:
a) ${n_{C{O_2}}} = 0,3mol;{n_{{H_2}O}} = 0,42mol$
Do ${n_{C{O_2}}} < {n_{{H_2}O}}$ $→ 2$ ancol no, đơn chức
Gọi CTTQ 2 ancol là \[{C_{\overline n }}{H_{2\overline n + 2}}O\]
$ \Rightarrow {n_{ancol}} = {n_{{H_2}O}} - {n_{C{O_2}}} = 0,12mol$
$ \Rightarrow \overline n = \dfrac{{{n_{C{O_2}}}}}{{{n_{ancol}}}} = \frac{{0,3}}{{0,12}} = 2,5$
$ \Rightarrow $ $2$ ancol là ${C_2}{H_5}OH;{C_3}{H_7}OH$
Vì $2$ ancol cùng bậc, ta có CTCT của $2$ ancol:
$C{H_3} - C{H_2} - OH:e\tan ol$
$C{H_3} - C{H_2} - C{H_2}OH:propan - 1 - ol$
b)
Do số $C$ tb = 2,5 $ \Rightarrow {n_{{C_2}{H_5}OH}} = {n_{{C_3}{H_7}OH}} = 0,06mol$
$ \Rightarrow {m_{{C_2}{H_5}OH}} = 0,06.46 = 2,76g;{m_{{C_3}{H_7}OH}} = 0,06.60 = 3,6g$
Câu 3:
${n_X} = 0,2mol$
Dẫn $X$ qua dung dịch brom, khí thoát ra là ${C_3}{H_8}$ (1,4 lít)
$ \Rightarrow \% {V_{{C_3}{H_8}}} = \dfrac{{1,4}}{{4,48}}.100\% = 31,25\% $
$\begin{gathered} \Rightarrow {V_{{C_3}{H_6}}} + {V_{{C_3}{H_4}}} = 4,48 - 1,4 = 3,08(l) \hfill \\ \Rightarrow {n_{{C_3}{H_6}}} + {n_{{C_3}{H_4}}} = 0,1375mol \hfill \\ \end{gathered} $
Dẫn X qua dung dịch $AgN{O_3}/N{H_3}$, chỉ có ${C_3}{H_4}$ bị giữ lại
${C_3}{H_4} + AgN{O_3} + N{H_3} \to {C_3}{H_3}Ag + N{H_4}N{O_3}$
$ 0,075$ → $0,075$
$ \Rightarrow {n_{{C_3}{H_6}}} = 0,1375 - 0,075 = 0,0625mol$
${m_{binh{\text{ B}}{{\text{r}}_2}{\text{ tang}}}} = {m_{{C_3}{H_4}}} + {m_{{C_3}{H_6}}} = 0,075.40 + 0,0625.42 = 5,625g$
$\begin{gathered} \% {V_{{C_3}{H_6}}} = \dfrac{{0,0625}}{{0,2}}.100\% = 31,25\% \hfill \\ \Rightarrow \% {V_{{C_3}{H_4}}} = 100 - 31,25.2 = 37,5\% \hfill \\ \end{gathered} $
