Fields having exactly one quadratic extension (up to isomorphism)

After some searches, I can answer negatively. Actually we can state more:

There are infinite fields with exactly one extension of degree $n$, for every $n \geq 1$.

(Notice that a finite field satisfies this condition, but an algebraically closed field doesn't work since has at most one extension of degree $n \geq 1$ (actually $0$ if $n \geq 2$)).

Such fields $F$ satisfy in particular $[\overline F : F] = \infty$, since there are elements of arbitrarily large degree over $F$.

A concrete example is:

The field of formal Laurent series over $\Bbb C$, denoted by $F = \Bbb C((T))$.

(Its algebraic closure is the field of Puiseux series, but we don't need that to state $[\overline F : F] = \infty$. By the way, $F$ has characteristic 0). This example has actually been discussed here. This example doesn't require the axiom of choice (the other one below does require it)...

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More generally, we can look at quasi-finite fields (which also require the field to be perfect), or the even stronger notion of pseudo-finite field. An exemple is given here:

Let $Q$ be the set of all prime powers, and let $\mathcal U$ be a non-principal ultrafilter on $Q$ (i.e. for all $q \in Q$, there is $A \in \mathcal U$ such that $q \not \in A$). Then the field $$F' = \left(\prod_{q \in Q} \mathbb F_q\right)/\mathcal U$$ is a pseudo-finite field ; in particular it has exactly one extension of degree $n$, for every $n \geq 1$.

Finite fields still give loads of examples. Let $\kappa$ be any finite field, and let $q$ be any prime (not necessarily distinct from the characteristic). Now take the union $\mathcal K$ of all fields $K_n$ for which $[K_n:\kappa]=q^n$. Then $\mathcal K$ is infinite, and will have a unique extension of every degree prime to $q$, in particular only one quadratic extension, if $q\ne2$.

EDIT — Addition:
On looking more closely at your question, I see that you make some guesses about characteristic two. There the quadratic-extension picture is simultaneously simpler and more complicated. When you adjoin the square root of something, you’re making an inseparable extension of degree $p$, and the truth of the matter is that when the base is perfect, as $\overline{\Bbb F_2}$ is, and your field is finitely generated over the base, and the transcendence degree is only one, then there is precisely one inseparable extension of degree $p$, indeed only one purely inseparable extension of degree $p^m$ for each $m$. In other words, starting with $k=\overline{\Bbb F_2}(t)$, no matter what rational function you adjoin the square root of, you get the same extension, $k^{1/2}$
On the other hand, there are infinitely many nonisomorphic quadratic separable extensions of $k=\overline{\Bbb F_2}(t)$, for instance the ones gotten by adjoining the roots of $X^2+t^mX+t$.

No, it does not. Let $ F $ be an algebraic extension of $ \mathbf Q $, maximal with respect to the property of not containing any of $ \sqrt{2}, \sqrt[3]{2}, \zeta_3 \sqrt[3]{2}, \zeta_3^2 \sqrt[3]{2} $. (The existence of such an $ F $ is guaranteed by Zorn's lemma.) Then, $ F $ has precisely one quadratic extension: $ F(\sqrt{2}) $; however, $ X^{3^k} - 2 $ remains irreducible in $ F[X] $ for all $ k \geq 1 $, thus $ [\bar{\mathbf Q} : F] $ is not finite.