In Peskin & Schroeder's book, the authors say that if $\phi(x)$ is the (quantum) Klein-Gordon field operator in Schrödinger's picture and $|0\rangle$ is the vacuum state, the application $$\phi(x)|0\rangle = \int \frac{d^{3}p}{(2\pi)^{3}}\frac{1}{2E_{p}}e^{-ip\cdot x} |p\rangle $$ is interpreted as creation of a particle at position $x$. The argument is that, apart from the factor $1/2E_{p}$ in the above formula, the expression is exactly the eigenstate of the position $|x\rangle$ for non-relativistic QM.
Can someone help me understand this interpretation?
My points:
(a) Aren't the eigenstates of the position operator $x$ delta distributions? The integral on the right hand side of the above expression resembles the wave function of the free particle, not the eigenstates of the position to me.
(b) The authors say that $\langle x | p\rangle = e^{ip\cdot x}$ helps the aforementioned interpretation. How come?
