Consider the differential operator $T:u\mapsto -iu'$ for any $u\in D(T):=\{f\in AC[-\pi,\pi]~|~f'\in L^2(-\pi,\pi),f(-\pi)=f(\pi)\}$; we consider $T$ as a densely-defined operator on $L^2(-\pi,\pi)$. It is easily seen, using integration by parts, that $T\subseteq T^*$, i.e., $T$ is symmetric. I wish to show that $T$ is in fact self-adjoint. What would be the best route to achieving this result?
It is clear from symmetricity of $T$ that $T^{**}\subseteq T^*$. Does symmetricity of $T$ also imply that $T^*$ is symmetric? This would mean that $T^*=T^{**}$. If this were the case then a sufficient condition for self-adjointness of $T$ would be closedness of $T$ (since $\overline{T}=T^{**}$).
Any help on this would be greatly appreciated!