11.7
Max von Laue proposed that crystals could diffract X-rays due to their periodic atomic arrangement.
X-rays, having about 100-picometer wavelength similar to internuclear distances in molecules, interact with electrons, enabling structure determination using an X-ray diffractometer.
Later, it was furthered by William and Lawrence Bragg, considering an ordered array of atoms in lattice planes separated by a distance d. If two waves of monochromatic X-rays hit the crystal, one wave is reflected from an atom in the first lattice plane and the second from an atom in the second lattice plane.
When hit at a random angle, it results in destructive interference, producing no detectable diffracted X-rays. On the other hand, when hit at a specific angle, constructive interference leads to measurable diffracted X-rays.
This constructive interference happens if the additional distance traveled by the second wave equals a multiple of the wavelength, expressed as 2d sin θB.
This equation is known as Bragg's law of diffraction, which relates X-ray wavelength, crystal lattice spacing, and incidence angle.
Bragg's law allows for different diffraction orders, each corresponding to integral values of n.
In the late 1800s, the revelation that light extended beyond visible wavelengths led to the discovery of X-rays by Wilhelm Roentgen. Recognized as hig…
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