Q.Between the primary and secondary rainbows, there is a dark band known as Alexandar's dark band. This is because
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Start your 14-day free trial to unlock the full solution →The primary rainbow's light (one internal reflection) reaches the eye only at angles up to about from the antisolar point, and the secondary rainbow's light (two internal reflections) only at angles beyond about . No raindrop geometry sends light into the gap between them, so no light at all is scattered into that region — option (b) — and that gap is the angular range (d) roughly to . Both (b) and (d) are correct.
Setting up
A rainbow is formed by sunlight entering spherical raindrops, reflecting once (primary) or twice (secondary) off the inner back surface, and refracting back out. For a given number of internal reflections, the deviation of a ray depends on where it strikes the droplet, and there is a minimum deviation angle at which rays bunch up and produce a bright, sharply-defined bow — this is the rainbow angle.
The primary bow (one internal reflection)
For red light with one internal reflection, the minimum deviation is about . Measured from the antisolar point (the direction directly opposite the Sun, i.e. of your own shadow), the observed angular radius is
All the light this mechanism sends toward the eye lies at angles up to about from the antisolar point — never beyond.
The secondary bow (two internal reflections)
The extra reflection sends the light out at a larger deviation, about for red, giving an observed angular radius of
All the light this mechanism sends toward the eye lies at angles beyond about .
The gap in between …
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