State what is meant by a virtual image.

Show that the image of the object formed by L₁ is 12 cm to the right of L₁.

The distance between the lenses is 18 cm. Determine the focal length of L₂.

On the diagram draw rays to locate the focal point of L₂. Label this point F.

Explain why, for the final image to form at infinity, the distance between the lenses must be 87.5 cm.

The angular diameter of the Moon at the naked eye is 7.8 × 10^–3 rad.

Calculate the angular diameter of the final image of the Moon.

By reference to chromatic aberration, explain one advantage of a reflecting telescope over a refracting telescope.

an image formed by extensions of rays, not rays themselves
OR
an image that cannot be projected on a screen

[1 mark]

\(\frac{1}{v} = \frac{1}{{3.0}} - \frac{1}{{4.0}}\)

«v = 12 cm»

[1 mark]

u = 18 – 12 = 6.0 «cm»

v = –24 «cm»

«\(\frac{1}{f} = \frac{1}{{6.0}} - \frac{1}{{24}} \Rightarrow \)» f = 8.0 «cm»

Award [2 max] for answer of 4.8 cm.
Minus sign required for MP2.

[3 marks]

line parallel to principal axis from intermediate image meeting eyepiece lens at P

line from arrow of final image to P intersecting principal axis at F

[2 marks]

object is far away so intermediate image forms at focal plane of objective

for final image at infinity object must also be at focal point of eyepiece

«hence 87.5 cm»

No mark for simple addition of focal lengths without explanation.

[2 marks]

angular magnification = \(\frac{{85.0}}{{2.50}}\) = 34

angular diameter 3.4 × 7.8 × 10⁻³ = 0.2652 ≈ 0.27 «rad»

[2 marks]

chromatic aberration is the dependence of refractive index on wavelength

but mirrors rely on reflection
OR
mirrors do not involve refraction

«so do not suffer chromatic aberration»

[2 marks]