Let $\alpha\in \overline {\mathbb F_2}$ (the algebraic closure of $\mathbb F_2$ ) be such that $\mathbb F_2[\alpha]$ is a field of order $2^n$ (where $n>1$).
Then is it true that $\alpha \in \mathbb F_2[\alpha]^{\times}$ generates the multiplicative group $\mathbb F_2[\alpha]^{\times}$ i.e. is $2^n-1$ the multiplicative order of $\alpha$ ?
Not necessarily. For instance $f(x)=x^4+x^3+x^2+x+1$ is irreducible over $\Bbb F_2$, so a solution $\alpha$ of $f(x)=0$ generates $\Bbb F_{16}$. But $\alpha$ has multiplicative order $5$ and does not generate $\Bbb F_{16}^\times$.
Yes. Every primitive element of a finite field $K$ is a generator of the multiplicative group $K^*$.
THIS IS BY DEFINITION
A generator of the cyclic group $\Bbb{F}_q^*$ is called a primitive element of $\Bbb{F}_q$.
I have tried to explain this difference in the tag wiki.
I believe (my impressions only) the difference in conventions comes from the following sources:
Here is a systematic way to find counterexamples. Note that $\mathbb{F}_{2^n}$ has a primitive $m$th root of unity iff $m\mid 2^n-1$, since its multiplicative group is cyclic of order $2^n-1$. This means that if you take a primitive $m$th root of unity, the field extension of $\mathbb{F}_2$ that it generates will have $2^n$ elements for the least $n$ such that $m\mid 2^n-1$. (Note that if $m$ is odd then such an $n$ always exists, since $2$ is invertible mod $m$ and so some power of $2$ is $1$ mod $m$.)
In particular, if $m$ is odd and not one less than a power of $2$, then a primitive $m$th root of unity will be a primitive element of $\mathbb{F}_{2^n}$ for this value of $n$ but will not have order $2^n-1$. Lord Shark the Unknown's example takes $m=5$, the smallest odd number that is not one less than a power of $2$, for which $n=4$.
