There is a theorem saying that every open set in $R$ can be written as a countable union of disjoint open intervals. And we can also show any open set in $R^n$ can be written as the union of countable many bounded open intervals (see here).
I understand the proofs of the above two statements, but it feels strange that $R^n$ does not share the same property as $R$. Is there any explanation that why an open set in $R^n$ might not be written as countable union of disjoint open intervals?
Best Answer
Yes. $\:$ For integers $n$ that are greater than $1\hspace{-0.02 in}$, $\mathbf{R}^n$'s usual topology is not an order topology.
Specifically, $\mathbf{R}^n$ will have no cut points, whereas every point of $\mathbf{R}$ is a cut point.