2
$\begingroup$

How to prove that "If $A \in\mathcal M_{n,n}(\mathbb C)$ is Hermitian and $A^2= 0_{n,n}$, then $A$ must be a null matrix"?

This is probably easy but I am not able to get this, I know that for any Hermitian matrix the diagonal element must be purely real, does this help here?

  • 1
    Hermitian (not *Hermition*) matrices are diagonalizable.2012-01-16

3 Answers 3

1

Assuming you know about minimal polynomials or when you first learn of them...$A$ is Hermitian $\Rightarrow$ $A$ is diagonalizable (by the complex spectral theorem) and so its minimal polynomial, $m_t(A)$, splits with distinct linear factors (indeed $A$ diagonalizable $\Leftrightarrow$ $m_t(A)$ splits with distinct linear terms). Now, let $f(t) = t^2$ then $f(A) = 0$ $\Rightarrow$ $f$ is an annihilating polynomial of $A$. Hence, $m_t(A) | f(t)$; i.e., we have that either $m_t(A) = t^2$ (in which case $A$ is not diagonalizable) or $m_t(A) = t$ (in which case $A$ is the null matrix). Therefore, since $A$ is diagonalizable $m_t(A) = t$ and we see that $A$ is the null matrix.

8

Let $\langle \cdot,\cdot\rangle$ the canonical inner product in $\mathbb C^n$. Then for $x\in\mathbb C^n$: $\langle Ax,Ax\rangle =\langle A^*Ax,x\rangle=\langle A^2x,x\rangle =0$ so $Ax=0$. In particular for $x=e_j$, $j$-th vector of the canonical basis of $\mathbb C^n$, we get $A=0$.

4

Do you know that every Hermitian matrix is diagonalizable (for example by the spectral theorem)? If yes, write $A=S^{-1}DS$ with $D$ diagonal and see what you can conclude from $A^2=0$.

  • 0
    I did it :-) $\space$2012-01-17