Why Does Bragg's Law Require Integers?

aoner
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Hi there,

So in bragg's law 2d\sin \theta =n\lambda, n needs to be an integer. Can anyone explain why? I mean, what if the extra path 2d that the 'second beam' has is not dividable by a wavelength?
Not sure if this is asked before but could not find it!

Cheers,
Adnan
 
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If the extra path 2dsinθ is not an integer multiple of the wavelength, then you don't get constructive interference, hence no wave for that angle θ.

img_full_47305.gif
 
Ah, yes! Sorry just also came up with that haha. Thanks!
 

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