Are there any $\mathbb{Q}_p$ which contains the third root of unity?

Question

I am having trouble seeing the following: Let $\mathbb{Q}_p$ be $p$ adic numbers. And $\zeta$ be the third root of unity, so that $\zeta^3 = 1$. Does there exist $p$ for which $\zeta \in \mathbb{Q}_p$? Any comments are appreciated. Thank you.

Answer 1

If $3 \mid (p-1)$, then by the cyclicity of $\Bbb F_p^\times$, there's a third root of unity in $\Bbb F_p^\times$

As the third cyclotomic polynomial is separable mod $p$ for $p \neq 3$, we can lift this solution of $x^2+x+1$ by Hensel's lemma.

Answer 2

For odd $p$, the roots of unity within $\Bbb Q_p$ are the $(p-1)$-th roots of unity (think about the Teichmuller map). So $\Bbb Q_p$ contains all $r$-th roots of unity iff $r\mid(p-1)$.

Answer 3

In fact, if $p$ is an odd prime, $\mathbf{Q}_p$ contains exactly the $(p-1)$st roots of unity (this is sometimes used to show that for odd primes, $\mathbf{Q}_p$ and $\mathbf{Q}_q$ are not isomorphic). This statement is proved by considering the polynomial $x^{p}-x$ in $\mathbf{Z}_p[x]$ and noting that it splits in $\mathbf{F}_p$, and then applying Hensel's Lemma we get that it splits in $\mathbf{Z}_p$. So consider $p=13$. Then $\mathbf{Q}_{13}$ contains all the $12$th roots of unity, hence contains the cube roots of unity. It's probably not too hard to construct a cube root of unity in $\mathbf{Q}_{13}$ explicitly.