This question answers which the smallest symmetric group to embeds $D_n$ of order $2 n$.
I would like to know what is the smallest symmetric group which embeds $D_n \rtimes Aut(D_n)$.
I understand that to know the answer I need to know the order of the elements in the product. From here, I can say that the order of a semidirect product is the product of the orders of the operand groups. We know that $$Aut(D_n) = C_n \rtimes_\phi Aut(C_n)$$. So, $$|D_n \rtimes Aut(D_n)| = |D_n \rtimes (C_n \rtimes_\phi Aut(C_n))| $$.
Then I have shown here that:
$$ |D_n \rtimes Aut(D_n)| = 2 n^3 \prod_{p|n} \left(1 - \frac{1}{p}\right) $$
I am not sure how to proceed from here.
PS. I initially thought that $|Aut (D_n)|$ is also $2 n$ which is incorrect as Dietrich pointed out. So, I fixed it.
