Q.Derive Bragg's equation.
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Start your 14-day free trial to unlock the full solution →Requiring the path difference 2d sin(theta) between X-rays reflected from adjacent crystal planes to equal n*lambda gives Bragg's law: 2 d sin(theta) = n lambda.
When a beam of X-rays strikes a crystal, the rays are reflected by the parallel layers (planes) of atoms in the crystal. Consider two adjacent parallel planes separated by an interplanar spacing d. Let the X-rays strike at a glancing angle theta (measured from the plane surface).
Derivation:
- Ray 1 reflects from the upper plane; Ray 2 reflects from the lower plane.
- Ray 2 travels an extra distance compared to Ray 1. Drawing perpendiculars from the point of reflection on the upper plane to the incident and reflected parts of Ray 2, the extra path is (AB + BC), where each equals d sin(theta).
- Therefore the total path difference = 2 d sin(theta).
Condition for constructive interference (a strong reflected beam): the path difference must be an integral multiple of the wavelength lambda:
2 d sin(theta) = n lambda, n = 1, 2, 3, ...
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