Ideal in integral domain implies self-similar

Statement

Suppose ${\displaystyle A}$ is an integral domain, and ${\displaystyle I}$ is an ideal of ${\displaystyle A}$. Consider ${\displaystyle I}$ as an ${\displaystyle A}$-module. Then, any nonzero ${\displaystyle A}$-submodule of ${\displaystyle I}$ contains a submodule isomorphic to ${\displaystyle I}$ (as an ${\displaystyle A}$-module).

Proof

Given: ${\displaystyle A}$ is an integral domain, and ${\displaystyle I}$ is an ideal of ${\displaystyle A}$. ${\displaystyle N}$ is a nonzero ${\displaystyle A}$-submodule of ${\displaystyle I}$

To prove: ${\displaystyle N}$ contains a submodule ${\displaystyle J}$ isomorphic to ${\displaystyle I}$ as an ${\displaystyle A}$-module.

Proof: Pick ${\displaystyle 0\neq x\in N}$. Consider the submodule ${\displaystyle xI}$. There is a natural homomorphism:

${\displaystyle a\mapsto xa}$

from ${\displaystyle I}$ to ${\displaystyle xI}$. Since the multiplication is within an integral domain, the map is injective, and by definition, it is surjective. We thus have an isomorphism.