Q.(a) Obtain Lens maker's formula. OR
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Start your 14-day free trial to unlock the full solution →(a) Applying single-spherical-surface refraction twice (once per lens face) and combining gives the lens maker's formula; (b) comparing the open-circuit voltmeter reading (emf) with the closed-circuit reading (terminal voltage) across a known external resistance gives the cell's internal resistance. Both alternatives answered below.
(a) Lens maker's formula
Consider a thin lens made of material of refractive index , placed in a medium of refractive index , with two spherical surfaces of radii (first surface) and (second surface). Let a point object on the axis form a final image after refraction at both surfaces in turn.
Refraction at the first surface (from medium into the lens, ), treating as the object and (virtual, inside the lens) as its image, using the single-spherical-surface refraction formula:
Refraction at the second surface (from the lens, , back into medium ), where now acts as the (virtual) object for this surface (object distance ), and the final image is at distance :
Adding (1) and (2) — the terms cancel (this is why the thin-lens approximation, ignoring the lens's thickness, works):
Dividing throughout by :
where is the refractive index of the lens material relative to the surrounding medium.
Since, by definition, is the image distance when the object is at infinity (, so ), this relation is the lens maker's formula:
(b) Determining the internal resistance of a cell using a voltmeter
Setup. A cell of emf and internal resistance is connected in a circuit with a high-resistance voltmeter connected directly across its terminals, in series with a key and a known external resistance (e.g. a resistance box).
Step 1 — open circuit. With the key open, no current is drawn (voltmeter draws negligible current, being very high resistance), so the voltmeter reads the full emf of the cell:
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