It's homework time again. Consider a function $f\in C^k_c(\mathbb{C})$, i.e. $C^k$ functions with compact support. Then the function $$u(z) = -\frac{1}{2\pi i} \iint_{\mathbb{C}} \frac{f(\zeta)}{\zeta -z } d\zeta \wedge d\bar{\zeta}$$
is in $C^k(\mathbb{C})$ and solves $$\frac{\partial u}{\partial \bar{z}}=f$$
I want to show that $u(z)$ goes to $0$ as $|z| \rightarrow \infty$. I guess I have to use that $f$ has compact support somehow. But how to start? Do I have to use the Cauchy integral formula? What if I made a change of variables like
$$u(z) = -\frac{1}{2\pi i} \iint_{\mathbb{C}} \frac{f(\zeta+z)}{\zeta} d\zeta \wedge d\bar{\zeta}$$
Would that do anything?
Hint: Let $K$ be the support of $f.$ Set $R = \max \{|z|:z\in K\}.$ Use the fact that $f$ is bounded on $K$ to see that there is a constant $C$ such that for $|z|>R,$
$$|u(z)| \le C\int_K \frac{1}{|\zeta-z|}\, dA(z) \le C\int_K \frac{1}{|z|-R}\, dA(z).$$