2
$\begingroup$

I figured out that it can be transformed in $|z| = iz$ and using the trigonometric method I get: $|z| = |z|(\cos(x) + i\sin(x))(\cos(\pi/2) + i\sin (\pi/2))$ which becomes $|z| = |z|(\sin(x) - i\cos(x))$

I delete $|z|$ from both sides and get $1 = \sin(x) - i\cos(x)$

But don't know how to continue... PS: I am open to other types of solutions, if more elegant. Thank you

5 Answers 5

4

$|z|$ is a positive number. So $iz$ must be an imaginary number with positive imaginary part. That implies $z$ is on the imaginary axis, with a sign opposite that of $i$. That's all that is needed. In other words $z=ci$ is a solution for every $c<0$. You get as many solutions as there are negative numbers $c$.

1

Write $z = x + iy$ with $x, y \in \mathbb R$. Then $x + i(y + \sqrt{x^2 + y^2}) = 0$. Since $x, y \in \mathbb R$, we find $x = 0$ and $y = -\sqrt{x^2 + y^2} = |y|$. These conditions are fulfilled for all $y \le 0$, so the set of solutions is $\{ iy \mid y \le 0\}$.

1

Clearly, $z=-i|z|$ is purely imaginary $=iy$ (say) where $y$ is real.

So, $iy+i|y|=0\implies |y|=-y\implies y\le 0$

0

Infinitely many, $z = -i\alpha$ is a solution for every $\alpha \geq 0$ ($\alpha \in \mathbb{R}$, of course).

0

Let $z=r e^{i \theta}$, this gives the equation $r ( e^{i \theta} + i) = 0$, with $r \geq 0$.

Hence either $r=0$ or $\theta = 2 \pi k -\frac{\pi}{2}$, for some integer $k$.

It follows that the solutions are $z = -r i$, with $r \geq0$.