Central elements in the Dihedral Group of order $ 2n.$

For $(a)$, if $n$ is even and less than $4$, then $n = 2 $ (and you have the non-cyclic group of order $4$, the symmetry group of the slightly bizarre "digon") or $n$ is not positive, and there is no dihedral group. Some people don't even like calling the dihedral group of order $ 4$ a dihedral group. The conclusion of $(a) $ and $(b)$ are true when $n=2$, but $(c)$ is not.

For $(b)$, I assume you are worried about claiming $r^k = r^{-k}$, as the rest of the expression is the same (and so could be canceled). They certainly look different, but if consider the special relation k and n have, I think you'll see they are the same.

For $(c)$, I admit I would use the description of dihedral groups of order 2n as consisting of n rotations and n flips. "Adjacent" flips (for $n\ge3$) do not commute, so no flip is in the center. If a rotation is in the center, then it must be the same as its flip. Only one rotation $r^K$ could possibly satisfy $r^K = r^{-K}$, and this is the key idea of $(b)$ again: $K=k $ has a very special relationship to n.

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A conceptual thing for later: when you look at "normalizers" and "centralizers" one really bizarre and useful thing is that the normalizer of a group of order $2 $is always equal to its centralizer. This is why $z$ is in the center: $z^*z = 1$, and $z$ is normalized by the flips.

(a) The fact that the order is exactly $2$ (and not merely divides $2$) now follows simply because the order of $r$ is exactly $n$, and $0\lt k\lt n$, so $z=r^k\neq 1$.

No, the hypothesis that $n\geq $ does not affect the fact that $z$ is of order $2$. This holds in all dihedral groups. That hypothesis has to do with (c) (for example, if you take $D_4$, then every element commutes with every other element, as you should have little trouble verifying, so that the assertion in (c) would be false then).

(b) Remember part (a)! You proved that $z^2 = e$, so $z=z^{-1}$. That means that $r^k = (r^k)^{-1} = r^{-k}$. You have $z(sr^i) = sr^{-k+i} = sr^{-k}r^i$; but since $r^{-k}=r^k$, then...

(c) You have already shown that every element commutes with $r^k$. Now you need to show that if $s^jr^i$, $0\leq j\leq 1$, $0\leq i\leq n-1$ commutes with everything, then either $s^jr^i = r^k$, or $s^jr^i = 1$.

Show that if $0\lt i\lt n$, and $r^i$ commutes with $s$, then $i=k$. That will show that the only power of $r$ that commutes with everything is $r^k=z$ (this is where you will need that $n\geq 4$).

Now think about elements of the form $sr^i$. If they commute with everything, then they must commute with both $s$ and with $r$. So, for example, you must have that $s(sr^i) = s^2r^i = r^i$ is equal to $(sr^i)s = s^2r^{-i} = r^{-i}$; when do you have $r^i = r^{-i}$? So that whittles down the possible elements that can commute with everything. And now, what happens when you compute $r(sr^i)$ and $(sr^i)r$? When, if ever, do you get equality?