Prove that there is NO simple group of order $n$ for each the following integers: $n=88, n=96, n=132.$
I am supposed to solve this using Sylows theorems somehow.
Lets start with $n = 88$ and say we have a Group $G$ with $|G|=88=8 \cdot11=2^3 \cdot 11.$
How do I go on from here?
For order $88$ the $n_{11}$ must be $1\mod 11$ and divide $8$ hence $n_{11}=1$ and the Sylow is unique,hence normal.
$96=2^5\times3$. It follows directly from Burnsides $p^aq^b$ theorem, i'll think on another solution. The solution provided by Dietrich is sweet, you should look at it.
$132=11\times3\times 2^2$, $n_{11}$ must be $1$ or $12$, if it's one you're done, if it is $12$ there are $12\times10=120$ elements of order $11$. $n_3$ must be $1\bmod 3$ and divide $44$. so it must be at least $4$ if it is not $1$. If it is $4$ there are $8$ elements of order $3$. this leaves $4$ elements not of orders $11$ or $3$, this is just enough for the $4$-Sylow subgroup which is forced to be unique.