I'm holding a seminar in geometry on the Hopf-fibration $S^3\rightarrow S^2$ using Quaternions/Rotations of $3$-Space to introduce the map. I've found a nice geometric way of presenting everything, except for the fact that the Hopf-fibration is not trivial.
I'd like to present that too geometrically (under stereographic projection). For instance, in the case of the Mobius strip, you can see that it is non-trivial by holding it next to a cylinder and noting that you need to tear it in at least one place to deform it into the said cylinder with one map, but you don't need to tear it if you allow two maps.
Following that analogy, I think the key is properly understanding the implications of every Hopf fiber being linked with the unit circle in the plane, but I can't visualize this properly.
Is there a nice way to see that we need at least two trivializing maps geometrically?
EDIT: It is common to refer to fiber bundles as twisted products, is there some visible "twisting" here?
Thinking of pairs of complex numbers rather than quaternions, let's write $(z_{1}, z_{2}) = (x_{1} + iy_{1}, x_{2} + iy_{2})$. One approach is to consider the hemisphere $$ |z_{1}|^{2} + (\operatorname{Re} z_{2})^{2} = x_{1}^{2} + y_{1}^{2} + x_{2}^{2} = 1,\quad y_{2} = 0,\quad x_{2} \geq 0. $$ If $z_{2} = |z_{2}|e^{i\theta}$ is non-zero, then the Hopf circle through a point $(z_{1}, z_{2})$ of the $3$-sphere hits this hemisphere at $(e^{-i\theta}z_{1}, |z_{2}|)$. This shows the Hopf fibration is trivial on the open hemisphere. On the other hand, the boundary $\{z_{2} = 0\}$ of the hemisphere is a Hopf circle, so the action by scalar multiplication does not extend trivially to the boundary, but instead collapses the boundary to a point.
Another approach is to split the $3$-sphere into two solid tori by the Clifford torus $|z_{1}| = |z_{2}| = \frac{1}{2}$, and show that each is trivial as a circle bundle over a disk but the attaching map on the boundary glues latitudes of one solid torus to meridians of the other, so the union is not a trivial bundle.