Characteristic not implies sub-(isomorph-normal characteristic) in finite

This article gives the statement and possibly, proof, of a non-implication relation between two subgroup properties, when the big group is a finite group. That is, it states that in a finite group, every subgroup satisfying the first subgroup property (i.e., characteristic subgroup) need not satisfy the second subgroup property (i.e., sub-(isomorph-normal characteristic) subgroup)
View all subgroup property non-implications | View all subgroup property implications

Statement

We can have a finite group ${\displaystyle G}$ and a characteristic subgroup ${\displaystyle H}$ of ${\displaystyle G}$ such that ${\displaystyle H}$ is not sub-(isomorph-normal characteristic in ${\displaystyle G}$. In other words, there is no ascending chain of subgroups from ${\displaystyle H}$ to ${\displaystyle G}$ such that each member is an isomorph-normal characteristic subgroup of its successor.

Related facts

• Characteristic not implies sub-isomorph-free in finite
• Characteristic not implies isomorph-free in finite

Proof

The center of a non-abelian group of odd prime cube order

Further information: Prime-cube order group:U3p

Let ${\displaystyle p}$ be an odd prime. Let ${\displaystyle G}$ be the non-abelian group of order ${\displaystyle p^3}$ and exponent ${\displaystyle p}$. Let ${\displaystyle H}$ be the center of ${\displaystyle G}$. Then, we have:

• ${\displaystyle H}$ is characteristic in ${\displaystyle G}$.
• ${\displaystyle H}$ is not sub-(isomorph-normal characteristic) in ${\displaystyle G}$: In fact, no proper subgroup of ${\displaystyle G}$ containing ${\displaystyle H}$ is isomorph-normal and characteristic. ${\displaystyle H}$ itself is not isomorph-normal, because there are other cyclic groups of order ${\displaystyle p}$. Moreover, ${\displaystyle H}$ is a maximal characteristic subgroup of ${\displaystyle G}$, so there is no other possibility.