Can the Cauchy product of divergent series with itself be convergent?

Let $c_0=1$, $c_1=-2$, $c_n=0$ for $n>1$. Let $a_0=1$, and for $n\ge1$ recursively $$a_n=\frac12\left(c_n-\sum_{k=1}^ {n-1}a_ka_{n-k} \right).$$ Then clearly $\sum c_n=\sum a_n\cdot \sum a_n$ in the sense of Cauchy product, and $\sum c_n$ is of course very convergent. Assume $\sum a_n$ converges. Then $\sum a_n x^n$ converges absolutely on $(-1,1)$. By absolute convergence, $\sum c_n x^n=(\sum a_n x^n)^2$ for $|x|<1$, which is absurd as $\sum c_n x^n<0$ for $x>\frac12$.


Let $f(x)=\sum_{n=0}^\infty a_nx^n$ be the (binomial) Taylor series for the function $\sqrt{1+x}$. Then:

1) This power series has radius of convergence $1$, so the series $f(2)=\sum_{n=0}^\infty a_n2^n$ diverges.

2) On the interval $(-1,1)$, we have $f(x)f(x)=1+x$ pointwise, and so the Cauchy product of $f(x)$ with itself must be the formal power series $1+x+0x^2+0x^3+\dots$. In particular, this means that the Cauchy product of $f(2)$ with itself is the series $1+2+0+0+\dots$.

(This is essentially the same example as in all the other answers, but I feel like this is an easier way to come to it. We could replace $1+x$ with any other holomorphic function whose square root is not holomorphic on its entire domain.)