Rayleigh Criterion Calculations
- The Rayleigh Criterion can be mathematically described by considering angular separation and single-slit diffraction
- Angular separation can be calculated using the equation:
- Where:
- θ = angular separation (rad)
- s = distance between the two sources (m)
- d = distance between the sources and the observer (m)
Angular separation, θ, is equal to the separation, s, of two sources divided by the distance, d, between the sources and the observer
- In single slit diffraction, the first minimum occurs when the angle of diffraction is:
- Where:
- θ = the angle of diffraction (radians)
- λ = the wavelength of the light (m)
- b = the slit width (m)
- According to the Rayleigh criterion, the two sources through a single slit would be just resolvable when the angle is equal to that of the first diffraction minimum or larger
- With the circular aperture, the value is multiplied by a factor of 1.22
- For a circular aperture, the Rayleigh criterion is:
- Where
- θ = the angle of diffraction (radians)
- λ = the wavelength of the light (m)
- b = the diameter of the circular aperture (m)
- When the angular separation is larger, or equal to, the Rayleigh criterion, then the two sources can be resolved
- Therefore, for a circular slit, resolution occurs when:
- The angular separation ≥ The angle of diffraction
- Mathematically, the condition for the resolution of two sources can be written as:
Worked Example
A student looks at a helicopter in the night sky with one eye closed and can just resolve two lights as individual sources. The wavelength of both sources is 530 nm. The approximate diameter of the student’s pupil is 6.0 mm. The distance from the student to the helicopter is 6.0 km.
Determine the minimum distance between the lights.
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- Wavelength of light sources, λ = 530 nm = 530 × 10−9 m
- Student pupil diameter, b = 6.0 mm = 6.0 × 10−3 m
- Distance from the helicopter light sources to the student's eye, d = 6.0 km = 6 × 103 m
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Since the lights can just be resolved, this is Rayleigh's criterion
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The equation needed is:
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- As the situation is when the lights can just be resolved, this can be written as:
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Rearrange for the distance between the sources, s:
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The approximate distance between the light sources on the helicopter, s = 65 cm
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Worked Example
A student views a car in the distance. It has headlights which are 1.5 m apart. The wavelength of light from the car headlights is 500 nm and the pupil diameter of the student is 4.0 mm.
Estimate the maximum distance at which the two headlights could be resolved by the student.
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Wavelength of light sources, λ = 500 nm = 500 × 10-9 m
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Student pupil diameter, b = 4.0 mm = 4.0 × 10-3 m
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Distance of separation between headlights, s = 1.5 m
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Since the answer will occur when Rayleigh’s criterion is met, the equation needed is:
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Step 3: Rearrange equation and input values
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- Rearrange for the distance between the sources and the observer, d:
Step 4: State the final answer
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- The maximum distance where the student could resolve the headlights, d = 9800 m (2 s.f.)
Exam Tip
You might be curious where the factor of 1.22 comes from, however, the derivation of this is beyond the scope of the IB DP Physics course so just make sure you know how to use it in your calculations