An entire function with periodic bounds

Question

This is a bit of a repost from an old question, but it doesn't seem like it was fully answered before and this is a bit of an abstraction from that post. I'm trying to show the following:

Let $f(z)$ be an entire function such that $f(z)=f(z+1)$ for all $z$. If there exists $c\in(0,1)$ such that $|f(z)|\le e^{c|z|}$ for all $z$, then $f(z)=0$.

The previous post was here: Entire "periodic" function

I've tried using Zarrax's method in that post:

The periodicity of $f(z)$ allows us to write $f(z)=g(e^{2\pi i z})$, since $e^{2\pi i (x+iy)}=e^{2\pi i (x+1+iy)}$. Now we have: $$\left|g(e^{2\pi i z})\right|\le e^{c|z|}$$

Now make a change of variables, re-writing $z=(2\pi i)^{-1}\log z$: $$\left|g(z)\right|\le e^{c\left|\frac{\log z}{2\pi i}\right|}$$

Now assume $|z|\ge 1$: $$\left|g(z)\right|\le e^{\frac{c}{2\pi}(\log |z|+2\pi)}=|z|^\frac{c}{2\pi}e^c$$

So now I would say that this implies $g(z)$ has to be a polynomial, but I don't really see how I can derive a contradiction from that.

Answer 1

Well, I might as well finish it up now. The result is only true if $c < 2\pi$, as $\sin(2\pi z)$ has period 1 and satisfies $|\sin(2\pi z)| \leq e^{c |z|}$ for any $c \geq 2\pi$.

You're on the right track; as you said up there $g(z)$ has to be a polynomial. Note that for $y > 0$ that $f(-iy) = g(e^{2\pi y})$. If $g(z)$ is of degree $n$, then $|f(-iy)|$ grows as $Ce^{2\pi ny}$ as $y \rightarrow \infty$. So if $n > 0$, $f(z)$ will violate the growth condition. Thus $n =0$, so that $g(z)$ (and therefore $f(z)$) is constant. Note that $f(z)$ doesn't have to be zero.

Answer 2

It's not true. Note that $e^{c|z|} \ge e^{2\pi |z|}$ if $c > 2 \pi$.