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A light-emitting diode (LED) emits light over a narrow range of wavelengths - AQA - A-Level Physics - Question 2 - 2021 - Paper 3

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A light-emitting diode (LED) emits light over a narrow range of wavelengths. These wavelengths are distributed about a peak wavelength $ ext{λ}_p$. Two LEDs $L_G$ ... show full transcript

Worked Solution & Example Answer:A light-emitting diode (LED) emits light over a narrow range of wavelengths - AQA - A-Level Physics - Question 2 - 2021 - Paper 3

Step 1

0 2 . 1 Determine $N$, the number of lines per metre on the grating.

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Answer

To determine the number of lines per metre (NN) on the grating, we can use the diffraction formula: dimesextsin(heta)=mimesextλd imes ext{sin}( heta) = m imes ext{λ} where dd is the distance between the grating lines and mm is the order of the maximum.

Given:

  • heta=76.3exto heta = 76.3^ ext{o}
  • m=5m = 5 (fifth-order maximum)
  • extλp ext{λ}_p, which needs to be read off from Figure 3; let's assume it is around 650 nm (0.65 µm).

We can rearrange this formula to find NN: N = rac{1}{d} = rac{m}{ ext{λ} imes ext{sin}( heta)} Substituting in the values gives: N = rac{5}{(650 imes 10^{-9}) imes ext{sin}(76.3^ ext{o})} Calculating this will provide NN in lines per metre.

Step 2

0 2 . 2 Suggest one possible disadvantage of using the fifth-order maximum to determine $N$.

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Answer

One possible disadvantage is that the fifth-order maximum may be less clear or less intense compared to lower orders. This could make it more difficult to accurately identify and measure the peak of the maximum, leading to potential errors in the calculation of NN.

Step 3

0 2 . 3 Determine, using Figure 4, $V_A$ for $L_R$.

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Answer

To find VAV_A for LRL_R, we can extrapolate the linear region of the characteristic curve for LRL_R until it intersects the horizontal axis. Since VAV_A for LGL_G is given as 2.00 V, we ascertain VAV_A for LRL_R by locating the corresponding intersection point on the graph.

Step 4

0 2 . 4 Deduce a value for the Planck constant based on the data given about the LEDs.

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Answer

Using the relationship: V_A = rac{h c}{e ext{λ}_p} We can express Planck's constant as: h = rac{V_A e ext{λ}_p}{c} We know:

  • c=3.00imes108extm/sc = 3.00 imes 10^8 ext{ m/s}
  • The values for VAV_A and extλp ext{λ}_p (use the peak wavelength from Figure 3). After substituting these values, we should arrive at a numerical value for hh.

Step 5

0 2 . 5 Deduce the minimum value of $R$.

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Answer

Given the total voltage from the power supply is 6.10 V and the maximum current in LRL_R is 21.0 mA, we can apply Ohm's Law: V=IimesRV = I imes R Rearranging gives: R = rac{V}{I} = rac{6.10}{0.021} This calculation will yield the minimum resistance RR, ensuring that the current does not exceed the specified limit.

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