Ya you understood me right, but now I'm unsure if my assumption of momentum is correct. I'm wondering if a infinite uncertainty in momentum is allowed because the particle direction has rotated 90 degrees - in that case the uncertainty is infinite... For example shoot a laser beam through a single slit. If you try to localize the photons to smaller and smaller regions (decrease the size of the slit), the interference patter on a sheet of paper past the slit will widen - the particles don't necessarily speed up, they just begin to increase in velocity in the perpendicular direction to the laser beam, and slow down in the direction of the laser beam, to preserve that the photon speed is still c. Now let's let the slit width go to 0, assuming the laser beam lies along the x-axis, (the interference pattern width in the y) the uncertainty in momentum will increase, the interference patter on the sheet will approach inf in length (i.e. the x component of the photon velocity is 0 and the y component is c and those photons wouldn't even hit the paper at all). In this case the BH collapses and QM does nothing to stop it. I will say this. The jets of a BH are OBVIOUSLY breaking a rule that nothing can escape a BH, things OBVIOUSLY do escape and escape at relativistic speeds. I still believe QM holds the answer but this probably isn't it. You should think about that - do some research on general relativity and very quickly rotating objects. Nuetron stars of about 2 solar masses rotate about 700 times per second and have a diameter of ~20km. Put that mass in the volume 4/3*pi*(h_bar/(M*c)^3) and see what happens to gravity. Along the axis of rotation it may be very possible that antigravity affect is responsible.