Examples of abelian subgroups of non-abelian groups.

Question

I'm searching for examples of abelian subgroups of non-abelian groups. Please enlighten me.

Answer 1

Let $G$ be any group, Abelian or not, and let $g\in G$. Then $\langle g\rangle=\{g^n:n\in\Bbb Z\}$, the subgroup of $G$ generated by $g$, is Abelian.

Answer 2

The smallest non-abelian group is the symmetric group $S_3$ of order $6$. So all its proper subgroups are abelian (the trivial subgroup, three subgroups of order $2$ and one subgroup of order $3$).

Answer 3

The dihedral groups are examples of non-abelian groups with a maximal subgroup which is cyclic, thus abelian.

Other examples of the same kind can be constructed by taking two primes $p, q$, and consider the order $n$ of $q$ modulo $p$, so the smallest $n$ such that $q^{n} \equiv 1 \pmod{p}$.

Then the finite field $\mathbf{F}_{q^{n}}$ contains an element $g$ of multiplicative order $p$. If we consider the semidirect product $G$ of $A$, the additive group of $\mathbf{F}_{q^{n}}$, by $\langle g \rangle$, acting by multiplication, then $A$ will be an abelian, maximal subgroup of the non-abelian group $G$.

Answer 4

The more simple example is the trivial subgroup $\{e\}$ of any non-abelian group where $e$ is the identity element.

Another example less simple is the quaternion group and for example $\{\pm1\}$ is an abelian subgroup.

Answer 5

The center of the group is a subgroup. It doesn't necessarily contain all Abelian subgroups.

Answer 6

One nice example is to look at SU(2). Given two elements randomly from SU(2), they will likely not commute and will thus generate a non-abelian group under free product. However, the subgroups formed under free product of each of the two elements alone do form abelian groups and these groups are naturally subgroups of the one generated by the two elements.