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A student constructs a battery using a potato, a strip of copper and a strip of magnesium - Scottish Highers Physics - Question 11 - 2018

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Question 11

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A student constructs a battery using a potato, a strip of copper and a strip of magnesium. The student then sets up the following circuit with the potato battery co... show full transcript

Worked Solution & Example Answer:A student constructs a battery using a potato, a strip of copper and a strip of magnesium - Scottish Highers Physics - Question 11 - 2018

Step 1

State what is meant by the term electromotive force (e.m.f).

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Answer

Electromotive force (e.m.f) is defined as the energy provided by a cell or battery per unit charge, measured in joules per coulomb (J/C). It represents the potential difference in a circuit when no current is flowing.

Step 2

Determine the internal resistance of the potato battery.

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Answer

To determine the internal resistance, we can analyze the provided graph showing the relationship between current (I) and terminal potential difference (V).

First, find the gradient of the graph:

extgradient=(290×103)(470×103)(105×106)(55×106)=3600Ω ext{gradient} = \frac{(290 \times 10^{-3}) - (470 \times 10^{-3})}{(105 \times 10^{-6}) - (55 \times 10^{-6})} = -3600 \, \Omega

Using the formula for internal resistance:

E=V+IrE = V + Ir

Substituting values:

E=670×103+(400×10375×1010)E = 670 \times 10^{-3} + (400 \times 10^{-3} \cdot 75 \times 10^{-10})

This yields:

r=3600Ωr = 3600 \Omega

Step 3

Explain, using band theory, why the blue LED will not operate with this battery.

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Answer

Electrons in the conduction band of semiconductors require sufficient energy to transition from the conduction band to the valence band. The blue LED, having a larger band gap compared to the red LED, necessitates a higher energy input to enable this transition. Since the potato battery does not supply enough potential (voltage) to provide this required energy, the blue LED does not illuminate whereas the red LED functions with the available battery output.

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