Lời giải chi tiết:

\(\begin{gathered}
nGly = 1,08mol;nAla = 0,48mol \hfill \\
Peptit\left\{ \begin{gathered}
Gl{y_n}:\frac{{1,08}}{n}mol\,co\,(n - 1)\,lien\,ket\,CONH \hfill \\
Al{a_m}:\frac{{0,48}}{m}mol\,co\,(m - 1)\,lien\,ket\,CONH \hfill \\ 
\end{gathered} \right. \hfill \\
\to So\,lien\,ket\,CONH:n - 1 + m - 1 = 5 \to n + m = 7(1) \hfill \\
T{H_1}:\left\{ \begin{gathered}
X:Gl{y_n} \hfill \\
Y:Al{a_m} \hfill \\ 
\end{gathered} \right. \to \frac{{\frac{{1,08}}{n}}}{{\frac{{0,48}}{m}}} = \frac{1}{3} \to 27m - 4n = 0(loai) \hfill \\
T{H_2}:\left\{ \begin{gathered}
X:Al{a_m} \hfill \\
Y:Gl{y_n} \hfill \\ 
\end{gathered} \right. \to \frac{{\frac{{0,48}}{m}}}{{\frac{{1,08}}{n}}} = \frac{1}{3} \to 3m - 4n = 0(2) \hfill \\
(1)(2) \to m = 4;n = 3 \hfill \\
\left\{ \begin{gathered}
X:Al{a_4}:0,12mol \hfill \\
Y:Gl{y_3}:0,36mol \hfill \\ 
\end{gathered} \right. \to m = 0,12(89.4 - 18.3) + 0,36(75.3 - 18.2) = 104,28(g) \hfill \\ 
\end{gathered} \)

Đáp án C