How would the most general $2 \times 2$ normal matrix look like?
Let $$A = \begin{bmatrix} a & b \\ c & d \end{bmatrix}.$$ For $A$ to be normal we require that $$\begin{bmatrix} \overline{a} & \overline{c} \\ \overline{b} & \overline{d} \end{bmatrix} \begin{bmatrix} a & b \\ c & d \end{bmatrix} = \begin{bmatrix} a & b \\ c & d \end{bmatrix} \begin{bmatrix} \overline{a} & \overline{c} \\ \overline{b} & \overline{d} \end{bmatrix},$$ or equivalently $$\begin{bmatrix} |a|^2 + |c|^2 & \overline{a}b + \overline{c}d \\ \overline{b}a + \overline{d}c & |b|^2 + |d|^2 \end{bmatrix} = \begin{bmatrix} |a|^2 + |b|^2 & a\overline{c} + b\overline{d} \\ c\overline{a} + d\overline{b} & |c|^2 + |d|^2 \end{bmatrix}.$$
Firstly notice that by equality of the diagonal entries we must have $$|b|^2 = |c|^2.$$ And furthermore comparing the off-diagonal entries we must have $$ \overline{a}b + \overline{c}d = a\overline{c} + b\overline{d}, $$ $$ \overline{b}a + \overline{d}c = c\overline{a} + d\overline{b}. $$
In the real case the first requirement reduces to $c=|b|$, but for complex matrices we could also have for example $b=1$ and $c=i$. For now let's just consider the real case: the most general case is to fix $b$ and let $c=|b|$. Then we have two cases:
- If $b$ is nonnegative $a$ and $d$ could be any real values.
- If $b$ is negative $a=d$.
The second case above corresponds to your example - I wouldn't consider this to be more general than the first case - for real numbers 1 and 2 together is most general.
So now for complex numbers there is a lot more work to be done: you could explore this further by for example setting $a = a_1 + ia_2, b=b_1 + ib_2, \ldots$, fixing some and then working out by the constraints what values the other variables could assume...
You can also characterize a normal matrix $A$ by the fact there exists an unitary matrix such that $U^{-1}AU=D$ where $D$ is diagonal.
Unitary $2x2$ matrices are well characterized, see for instance the wiki page: https://en.wikipedia.org/wiki/Unitary_matrix
$\exists (\alpha,\beta,\xi,\zeta)\in\mathbb R^4$ such that $U=\begin{bmatrix}\cos \alpha & -\sin \alpha\\\sin \alpha & \cos \alpha\end{bmatrix}\begin{bmatrix}e^{i\xi} & 0\\0 & e^{i\zeta}\end{bmatrix}\begin{bmatrix}\cos \beta & -\sin \beta\\\sin \beta & \cos \beta\end{bmatrix}$
$U=R(\alpha).\operatorname{diag}(e^{i\xi},e^{i\zeta}).R(\beta)$
$U^{-1}=R(-\beta).\operatorname{diag}(e^{-i\xi},e^{-i\zeta}).R(-\beta)$
Now you can take $D=\begin{bmatrix}z_1 & 0\\0 & z_2\end{bmatrix}$
Multiplying all these won't probably be very nice looking, but you get to parametrize any normal matrix with $4$ reals and $2$ complexes.
Yet, somehow, this isn't very satisfying for me, the dimension on $\mathbb R$ still appear to be $8$ while C.Haattingh showed that we need $|b|^2=|c|^2$ which can be rewritten $b=re^{it_b}$ and $c=re^{it_c}$ and we reduced the dimension by $1$ already. So I suspect that my $D$ and $(\xi,\zeta)$ are in fact not independent... Is it possible to fix that ?