Question

What roots of `z^4+z^2+1 = 0` satisfy `abs(z) < 1` ?

Answer 1

No root is in `abs z < 1`

Explanation:

Calling `u=z^2` we have

`u^2+u+1=0` solving for `u`
`u=1/2(-1pm isqrt3) = e^(pm i (phi + 2kpi))` with `phi=arctan sqrt(3)`

then

`z^2 = e^(pm i (phi+2kpi))` so `z=e^(pm i/2(phi+2kpi))`

but `abs (e^(ix))=1` so all four roots have unit modulus and no root is in `abs z < 1`

Answer 2

None

Explanation:

Alternatively, note that:

`0 = (z^2-1)(z^4+z^2+1) = z^6-1`

So the roots are all `6`th roots of unity and therefore all satisfy `abs(z) = 1` and not `abs(z) < 1`.