Laue equations: Difference between revisions

From testwiki
Jump to navigation Jump to search
imported>Aadirulez8
m v2.05 - auto / Fix errors for CW project (Link equal to linktext)
 
(No difference)

Latest revision as of 21:08, 8 December 2024

Template:Short description

Laue equation

In crystallography and solid state physics, the Laue equations relate incoming waves to outgoing waves in the process of elastic scattering, where the photon energy or light temporal frequency does not change upon scattering by a crystal lattice. They are named after physicist Max von Laue (1879–1960).

The Laue equations can be written as Δ𝐤=𝐤out𝐤in=𝐆 as the condition of elastic wave scattering by a crystal lattice, where Δ𝐤 is the scattering vector, 𝐤in, 𝐤out are incoming and outgoing wave vectors (to the crystal and from the crystal, by scattering), and 𝐆 is a crystal reciprocal lattice vector. Due to elastic scattering |𝐤out|2=|𝐤in|2, three vectors. 𝐆, 𝐤out, and 𝐤in , form a rhombus if the equation is satisfied. If the scattering satisfies this equation, all the crystal lattice points scatter the incoming wave toward the scattering direction (the direction along 𝐤out). If the equation is not satisfied, then for any scattering direction, only some lattice points scatter the incoming wave. (This physical interpretation of the equation is based on the assumption that scattering at a lattice point is made in a way that the scattering wave and the incoming wave have the same phase at the point.) It also can be seen as the conservation of momentum as 𝐤out=𝐤in+𝐆 since 𝐆 is the wave vector for a plane wave associated with parallel crystal lattice planes. (Wavefronts of the plane wave are coincident with these lattice planes.)

The equations are equivalent to Bragg's law; the Laue equations are vector equations while Bragg's law is in a form that is easier to solve, but these tell the same content.

The Laue equations

Let 𝐚,𝐛,𝐜 be primitive translation vectors (shortly called primitive vectors) of a crystal lattice L, where atoms are located at lattice points described by 𝐱=p𝐚+q𝐛+r𝐜 with p, q, and r as any integers. (So 𝐱 indicating each lattice point is an integer linear combination of the primitive vectors.)

Let 𝐤in be the wave vector of an incoming (incident) beam or wave toward the crystal lattice L, and let 𝐤out be the wave vector of an outgoing (diffracted) beam or wave from L. Then the vector 𝐤out𝐤in=Δ𝐤, called the scattering vector or transferred wave vector, measures the difference between the incoming and outgoing wave vectors.

The three conditions that the scattering vector Δ𝐤 must satisfy, called the Laue equations, are the following:

Δ𝐤𝐚=2πh
Δ𝐤𝐛=2πk
Δ𝐤𝐜=2πl

where numbers h,k,l are integer numbers. Each choice of integers (h,k,l), called Miller indices, determines a scattering vector Δ𝐤. Hence there are infinitely many scattering vectors that satisfy the Laue equations as there are infinitely many choices of Miller indices (h,k,l). Allowed scattering vectors Δ𝐤 form a lattice L*, called the reciprocal lattice of the crystal lattice L, as each Δ𝐤 indicates a point of L*. (This is the meaning of the Laue equations as shown below.) This condition allows a single incident beam to be diffracted in infinitely many directions. However, the beams corresponding to high Miller indices are very weak and can't be observed. These equations are enough to find a basis of the reciprocal lattice (since each observed Δ𝐤 indicates a point of the reciprocal lattice of the crystal under the measurement), from which the crystal lattice can be determined. This is the principle of x-ray crystallography.

Mathematical derivation

For an incident plane wave at a single frequency f (and the angular frequency ω=2πf) on a crystal, the diffracted waves from the crystal can be thought as the sum of outgoing plane waves from the crystal. (In fact, any wave can be represented as the sum of plane waves, see Fourier Optics.) The incident wave and one of plane waves of the diffracted wave are represented as

fin(t,𝐱)=Aincos(ωt𝐤in𝐱+φin),
fout(t,𝐱)=Aoutcos(ωt𝐤out𝐱+φout),

where 𝐤in and 𝐤out are wave vectors for the incident and outgoing plane waves, 𝐱 is the position vector, and t is a scalar representing time, and φin and φout are initial phases for the waves. For simplicity we take waves as scalars here, even though the main case of interest is an electromagnetic field, which is a vector. We can think these scalar waves as components of vector waves along a certain axis (x, y, or z axis) of the Cartesian coordinate system.

The incident and diffracted waves propagate through space independently, except at points of the lattice L of the crystal, where they resonate with the oscillators, so the phases of these waves must coincide.[1] At each point 𝐱=p𝐚+q𝐛+r𝐜 of the lattice L, we have

cos(ωt𝐤in𝐱+φin)=cos(ωt𝐤out𝐱+φout),

or equivalently, we must have

ωt𝐤in𝐱+φin=ωt𝐤out𝐱+φout+2πn,

for some integer n, that depends on the point 𝐱. Since this equation holds at 𝐱=0, φin=φout+2πn at some integer n. So

ωt𝐤in𝐱=ωt𝐤out𝐱+2πn.

(We still use n instead of (nn) since both the notations essentially indicate some integer.) By rearranging terms, we get

Δ𝐤𝐱=(𝐤out𝐤in)𝐱=2πn.

Now, it is enough to check that this condition is satisfied at the primitive vectors 𝐚,𝐛,𝐜 (which is exactly what the Laue equations say), because, at any lattice point 𝐱=p𝐚+q𝐛+r𝐜, we have

Δ𝐤𝐱=Δ𝐤(p𝐚+q𝐛+r𝐜)=p(Δ𝐤𝐚)+q(Δ𝐤𝐛)+r(Δ𝐤𝐜)=p(2πh)+q(2πk)+r(2πl)=2π(ph+qk+rl)=2πn,

where n is the integer ph+qk+rl. The claim that each parenthesis, e.g. (Δ𝐤𝐚), is to be a multiple of 2π (that is each Laue equation) is justified since otherwise p(Δ𝐤𝐚)+q(Δ𝐤𝐛)+r(Δ𝐤𝐜)=2πn does not hold for any arbitrary integers p,q,r.

This ensures that if the Laue equations are satisfied, then the incoming and outgoing (diffracted) wave have the same phase at each point of the crystal lattice, so the oscillations of atoms of the crystal, that follows the incoming wave, can at the same time generate the outgoing wave at the same phase of the incoming wave.

Relation to reciprocal lattices and Bragg's Law

If 𝐆=h𝐀+k𝐁+l𝐂 with h, k, l as integers represents the reciprocal lattice for a crystal lattice L (defined by 𝐱=p𝐚+q𝐛+r𝐜) in real space, we know that 𝐆𝐱=𝐆(p𝐚+q𝐛+r𝐜)=2π(hp+kq+lr)=2πn with an integer n due to the known orthogonality between primitive vectors for the reciprocal lattice and those for the crystal lattice. (We use the physical, not crystallographer's, definition for reciprocal lattice vectors which gives the factor of 2π.) But notice that this is nothing but the Laue equations. Hence we identify Δ𝐤=𝐤out𝐤in=𝐆, means that allowed scattering vectors Δ𝐤=𝐤out𝐤in are those equal to reciprocal lattice vectors 𝐆 for a crystal in diffraction, and this is the meaning of the Laue equations. This fact is sometimes called the Laue condition. In this sense, diffraction patterns are a way to experimentally measure the reciprocal lattice for a crystal lattice.

The Laue condition can be rewritten as the following.[2]

𝐆=𝐤out𝐤in|𝐤in|2=|𝐤out𝐆|2|𝐤in|2=|𝐤out|22𝐤out𝐆+|𝐆|2.

Applying the elastic scattering condition |𝐤out|2=|𝐤in|2 (In other words, the incoming and diffracted waves are at the same (temporal) frequency. We can also say that the energy per photon does not change.)

To the above equation, we obtain

2𝐤out𝐆=|𝐆|2,
2𝐤in(𝐆)=|𝐆|2.

The second equation is obtained from the first equation by using 𝐤out𝐤in=𝐆.

The result 2𝐤out𝐆=|𝐆|2 (also 2𝐤in(𝐆)=|𝐆|2) is an equation for a plane (as the set of all points indicated by 𝐤out satisfying this equation) as its equivalent equation 𝐆(2𝐤out𝐆)=0 is a plane equation in geometry. Another equivalent equation, that may be easier to understand, is 𝐤out𝐆^=12|𝐆| (also (𝐤in)𝐆^=12|𝐆|). This indicates the plane that is perpendicular to the straight line between the reciprocal lattice origin 𝐆=0 and 𝐆 and located at the middle of the line. Such a plane is called Bragg plane.[3] This plane can be understood since 𝐆=𝐤out𝐤in for scattering to occur. (It is the Laue condition, equivalent to the Laue equations.) And, the elastic scattering |𝐤out|2=|𝐤in|2 has been assumed so 𝐆, 𝐤out, and 𝐤in form a rhombus. Each 𝐆 is by definition the wavevector of a plane wave in the Fourier series of a spatial function which periodicity follows the crystal lattice (e.g., the function representing the electronic density of the crystal), wavefronts of each plane wave in the Fourier series is perpendicular to the plane wave's wavevector 𝐆, and these wavefronts are coincident with parallel crystal lattice planes. This means that X-rays are seemingly "reflected" off parallel crystal lattice planes perpendicular 𝐆 at the same angle as their angle of approach to the crystal θ with respect to the lattice planes; in the elastic light (typically X-ray)-crystal scattering, parallel crystal lattice planes perpendicular to a reciprocal lattice vector 𝐆 for the crystal lattice play as parallel mirrors for light which, together with 𝐆, incoming (to the crystal) and outgoing (from the crystal by scattering) wavevectors forms a rhombus.

Since the angle between 𝐤out and 𝐆 is π/2θ, (Due to the mirror-like scattering, the angle between 𝐤in and 𝐆 is also π/2θ.) 𝐤out𝐆=|𝐤out||𝐆|sinθ. Recall, |𝐤out|=2π/λ with λ as the light (typically X-ray) wavelength, and |𝐆|=2πdn with d as the distance between adjacent parallel crystal lattice planes and n as an integer. With these, we now derive Bragg's law that is equivalent to the Laue equations (also called the Laue condition):

2𝐤out𝐆=|𝐆|22|𝐤out||𝐆|sinθ=|𝐆|22(2π/λ)(2πn/d)sinθ=(2πn/d)22dsinθ=nλ.

References

Notes
  1. More realistically, the oscillators of the lattice should lag behind the incoming wave, and the outcoming wave should lag behind the oscillator. But since the lag is the same at all point of the lattice, the only effect of this correction would be global shift of phase of the outcoming wave, which we are not taking into consideration.
  2. Template:Cite book
  3. Template:Cite book