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Ch. 35 - Diffraction
Giancoli Douglas - Physics for Scientists and Engineers 5th edition
Giancoli Douglas5th editionPhysics for Scientists and EngineersISBN: 9780137488179당신이 사용하는 게 아니라요?교과서 변경
34장, 문제 51

A diffraction grating has 15,000 rulings in its 1.9 cm width. Determine (a) its resolving power in first and second orders, and (b) the minimum wavelength resolution (∆λ) it can yield for λ = 410 nm.

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Determine the number of rulings (N) on the diffraction grating by dividing the total number of rulings by the width of the grating. Use the formula: \( N = \text{total rulings} \).
Calculate the resolving power \( R \) for the first and second orders using the formula \( R = mN \), where \( m \) is the order of diffraction and \( N \) is the number of rulings.
Substitute \( m = 1 \) for the first order and \( m = 2 \) for the second order into the resolving power formula to find \( R \) for each case.
To find the minimum wavelength resolution \( \Delta \lambda \), use the formula \( \Delta \lambda = \frac{\lambda}{R} \), where \( \lambda \) is the given wavelength (410 nm) and \( R \) is the resolving power calculated in the previous step.
Substitute the values of \( R \) for the first and second orders into the formula for \( \Delta \lambda \) to determine the minimum wavelength resolution for each case.

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주요 개념

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Diffraction Grating

A diffraction grating is an optical component with a periodic structure that disperses light into its constituent wavelengths. The number of rulings per unit length determines its ability to separate different wavelengths. In this case, the grating has 15,000 rulings over a width of 1.9 cm, which is crucial for calculating its resolving power.
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Resolving Power

Resolving power is a measure of an optical system's ability to distinguish between closely spaced wavelengths. For a diffraction grating, it is defined as the ratio of the wavelength to the minimum resolvable wavelength difference (∆λ). The resolving power can be calculated using the formula R = nN, where n is the order of diffraction and N is the total number of rulings.
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Wavelength Resolution (∆λ)

Wavelength resolution (∆λ) refers to the smallest difference in wavelength that can be distinguished by the diffraction grating. It is inversely related to the resolving power; higher resolving power results in smaller ∆λ. For a given wavelength, the minimum wavelength resolution can be calculated using the formula ∆λ = λ/R, where λ is the wavelength of light being analyzed.
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