Krull intersection theorem for Noetherian domains

This article defines a result where the base ring (or one or more of the rings involved) is Noetherian
View more results involving Noetherianness or Read a survey article on applying Noetherianness

This fact is an application of the following pivotal fact/result/idea: Krull intersection theorem
View other applications of Krull intersection theorem OR Read a survey article on applying Krull intersection theorem

Statement

Let ${\displaystyle R}$ be a Noetherian domain (i.e. a Noetherian ring that is also an integral domain) and ${\displaystyle I}$ a proper ideal in ${\displaystyle R}$. Then, we have:

${\displaystyle {\displaystyle \bigcap _{j=1}^{\mathrm{\infty }}}{I}^j=0}$

Proof

Applying Krull intersection theorem for modules

The Krull intersection theorem states that if ${\displaystyle M}$ is a finitely generated module over a Noetherian ring ${\displaystyle R}$ and ${\displaystyle I}$ is an ideal inside ${\displaystyle R}$, then there exists ${\displaystyle r\in I}$ such that:

${\displaystyle (1-r)({\displaystyle \bigcap _{j=1}^{\mathrm{\infty }}}{I}^{j}M)=0}$

We apply this to the case where ${\displaystyle M=R}$, to get that there exists ${\displaystyle r\in I}$, such that:

${\displaystyle (1-r)({\displaystyle \bigcap _{j=1}^{\mathrm{\infty }}}{I}^j)=0}$

Applying the integral domain condition and properness of the ideal

Since ${\displaystyle I}$ is a proper ideal, ${\displaystyle 1\notin I}$. Hence ${\displaystyle r\ne 1}$, so the element ${\displaystyle 1-r}$ cannot be zero.

Thus, by the fact that we are in an integral domain, and by the above equation, we get:

${\displaystyle {\displaystyle \bigcap _{j=1}^{\mathrm{\infty }}}{I}^j=0}$