Waves, Electrons & Photons (Edexcel International A Level Physics)

Exam Questions

43 mins10 questions
1a
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4 marks

Rolled steel joists (RSJs) are used in the construction of buildings, as shown.

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The strength of an RSJ is greatly reduced if there are air gaps within the steel.
Ultrasound is used to detect any air gaps in the RSJ.

Pulses of ultrasound are sent by a transducer into an RSJ as shown. Any returning ultrasound is detected by the transducer.

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Explain how this arrangement can be used to show whether the RSJ contains an air gap.

1b
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3 marks

Ultrasound is a sound wave with a frequency greater than 20 kHz. The frequency of ultrasound used by the transducer in this method is 5 MHz.

Explain why a much higher frequency than 20 kHz is needed in this method.

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2a
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4 marks

A laser, a diffraction grating and a screen are set up as shown. The laser emits monochromatic light.

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When the laser is switched on, a series of bright dots is seen on the screen.

The diagram below shows the position of the central dot at O. The next bright dot appears at position X.

The diffraction grating has 450 lines per mm.

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Determine the wavelength of the light from the laser.





Wavelength = ..................................

2b
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3 marks
Explain why a series of bright dots is seen on the screen.

2c
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2 marks

The laser is replaced by a source producing a parallel beam of bright white light.

Suggest what would now be observed on the screen.

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3a
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4 marks

Sirius A is the brightest star in the night sky and is mostly composed of hydrogen.

When light from Sirius A passes through the hydrogen in the outer layers of the star, some light is absorbed. This causes electrons in the hydrogen to be excited.
The diagram shows an electron being excited from the –3.40 eV level to the –1.50 eV level.

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The wavelengths of the different colours of visible light are shown in the table below.

violet blue green yellow orange red
380–450 nm 450–495 nm 495–570 nm 570–590 nm 590–620 nm 620–750 nm

     
 Deduce the colour of the visible light that caused the electron transition shown in the diagram.

3b
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4 marks

A light year is the distance travelled by light in one year.

Sirius A is 8.60 light years from Earth. The intensity of radiation from Sirius A received on Earth is 1.17 × 10–7 W m–2.

Calculate the power of Sirius A.






Power of Sirius A = ...........................

3c
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2 marks
When hydrogen gas is excited in the laboratory, only certain wavelengths of light are emitted.

Explain why.

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4a
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3 marks

ICESat-2 is a satellite launched into space by NASA in 2018. One purpose of the satellite is to measure the thickness of ice on the Earth’s surface. The satellite is powered using solar panels. A laser in the satellite produces a beam of photons, which travel to the Earth and back.

Calculate the intensity of solar radiation as it reaches ICESat-2.
   distance from the Sun to ICESat-2 = 1.50 × 1011 m
   power of the Sun = 3.83 × 1026 W






Intensity of solar radiation = ........................................
4b
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3 marks
The laser emits light with a wavelength of 532 nm. Calculate the energy, in J, of each photon.





Energy of photon = ...................................... J

4c
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3 marks
The photons released by the laser are directed towards the Earth. The mean time for these photons to return to the satellite is 3.20 ms.

i)
Calculate the height that ICESat-2 orbits above the surface of the Earth.

(2)



Height above Earth = .......................................

ii)
When photons arriving at the satellite are detected, only those with a wavelength of exactly 532 nm are used in the analysis of the results.

Suggest why.
(1)
4d
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2 marks

At one point, ICESat-2 passes over a flat ice sheet. The ice sheet is 1000 m above sea level.
Explain how the measurements taken by ICESat-2 can be used to show that the ice sheet has a flat surface and is higher than sea level.

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