Ethyl iodide and $n-$propyl iodide are allowed to undergo Wurtz reaction. The alkane which will not be obtained in this reaction is:

The correct option is B Propane
In Wurtz reaction, alkane is prepared by reducing alkyl halide using Na in dry ether. It is a coupling reaction where two alkyl group will combine to form higher alkanes.
$R-X+2Na+X-R_1\stackrel{dryether}{⟶}R-R_1+2NaX$.
In given reaction, Ethyl iodide and n-propyl iodide are involved i.e., $R\ne R_1$
Therefore, we have 3 possibilities,
(i) $R$ will couple with $R$ ($R$ = Ethyl)
Ethyl is two carbon chain so it react with another ethyl to form four carbon chain, Butane.
$C{H}_{3}C{H}_2-I+2Na+I-C{H}_{2}C{H}_3\stackrel{dryether}{⟶}C{H}_{3}C{H}_{2}C{H}_{2}C{H}_3+2NaI$.
(ii) $R_1$ will couple with $R_1$ ($R_1$= n-Propyl)
n-propyl is three carbon chain so it react with another n-propyl to form six carbon chain, Hexane.
$C{H}_{3}C{H}_{2}C{H}_2-I+2Na+I-C{H}_{2}C{H}_{2}C{H}_3\stackrel{dryether}{⟶}C{H}_{3}C{H}_{2}C{H}_{2}C{H}_{2}C{H}_{2}C{H}_3+2NaI$.
(iii) $R$ will couple with $R_1$
Ethyl and n-propyl will combine to form five carbon chain, Pentane.
$C{H}_{3}C{H}_2-I+2Na+I-C{H}_{2}C{H}_{2}C{H}_3\stackrel{dryether}{⟶}C{H}_{3}C{H}_{2}C{H}_{2}C{H}_{2}C{H}_3+2NaI$.

Thus, propane is not prepared with this combination of alkyl halide in Wurtz reaction.