In wide-angle scattering (WAXS), one cannot simply assume that the detector plane is orthogonal to the incident x-ray beam. Converting from detector pixel coordinates to 3D q-vector is not always trivial, and depends on the experimental geometry.

Area Detector on Goniometer Arm

Consider a 2D (area) detector connected to a goniometer arm. The goniometer has a center of rotation at the center of the sample (i.e. the incident beam passes through this center, and scattered rays originate from this point also). Let ${\displaystyle \scriptstyle \phi _{g}}$ be the in-plane angle of the goniometer arm (rotation about ${\displaystyle \scriptstyle z}$-axis), and ${\displaystyle \scriptstyle \theta _{g}}$ be the elevation angle (rotation away from ${\displaystyle \scriptstyle xy}$ plane and towards ${\displaystyle \scriptstyle z}$ axis).

The final scattering vector depends on:

• ${\displaystyle \scriptstyle x}$: Pixel position on detector (horizontal).
• ${\displaystyle \scriptstyle z}$: Pixel position on detector (vertical).
• ${\displaystyle \scriptstyle d}$: Sample-detector distance.
• ${\displaystyle \scriptstyle \theta _{g}}$: Elevation angle of detector.
• ${\displaystyle \scriptstyle \phi _{g}}$: In-plane angle of detector.

Note that ${\displaystyle \scriptstyle x}$ and ${\displaystyle \scriptstyle z}$ are defined relative to the direct-beam. That is, for ${\displaystyle \scriptstyle \theta _{g}=0}$ and ${\displaystyle \scriptstyle \phi _{g}=0}$, the direct beam is at position ${\displaystyle \scriptstyle (x,z)=(0,0)}$ on the area detector.

Central Point

The point ${\displaystyle \scriptstyle (x,z)=(0,0)}$ can be thought of in terms of a vector that points from the source-of-scattering (center of goniometer rotation) to the detector:

${\displaystyle \mathbf {v} _{i}={\begin{bmatrix}0\\d\\0\end{bmatrix}}}$

This vector is then rotated about the ${\displaystyle \scriptstyle x}$-axis by ${\displaystyle \scriptstyle \theta _{g}}$:

${\displaystyle {\begin{alignedat}{2}\mathbf {v} _{2}&=R_{x}(\theta _{g})\mathbf {v} _{i}\\&={\begin{bmatrix}1&0&0\\0&\cos \theta _{g}&-\sin \theta _{g}\\0&\sin \theta _{g}&\cos \theta _{g}\\\end{bmatrix}}{\begin{bmatrix}0\\d\\0\end{bmatrix}}\\&={\begin{bmatrix}0\\d\cos \theta _{g}\\d\sin \theta _{g}\end{bmatrix}}\end{alignedat}}}$

And then rotated about the ${\displaystyle \scriptstyle z}$-axis by ${\displaystyle \scriptstyle \phi _{g}}$:

${\displaystyle {\begin{alignedat}{2}\mathbf {v} _{f}&=R_{z}(\phi _{g})\mathbf {v} _{2}\\&={\begin{bmatrix}\cos \phi _{g}&-\sin \phi _{g}&0\\\sin \phi _{g}&\cos \phi _{g}&0\\0&0&1\\\end{bmatrix}}{\begin{bmatrix}0\\d\cos \theta _{g}\\d\sin \theta _{g}\end{bmatrix}}\\&=d{\begin{bmatrix}-\sin \phi _{g}\cos \theta _{g}\\\cos \phi _{g}\cos \theta _{g}\\\sin \theta _{g}\end{bmatrix}}\end{alignedat}}}$

The point ${\displaystyle \scriptstyle (x,z)=(0,0)}$ on the detector probes the total scattering angle ${\displaystyle \scriptstyle \Theta =2\theta _{s}}$, which is simply the angle between ${\displaystyle \scriptstyle \mathbf {v} _{i}}$ and ${\displaystyle \scriptstyle \mathbf {v} _{f}}$:

${\displaystyle {\begin{alignedat}{2}\cos \Theta &={\frac {\mathbf {v} _{i}\cdot \mathbf {v} _{f}}{\left\|\mathbf {v} _{i}\right\|\left\|\mathbf {v} _{f}\right\|}}\\&=\cos \phi _{g}\cos \theta _{g}\\2\theta _{s}&=\arccos \left[\cos \phi _{g}\cos \theta _{g}\right]\end{alignedat}}}$

Thus:

${\displaystyle {\begin{alignedat}{2}q&={\frac {4\pi }{\lambda }}\sin \left(\theta _{s}\right)\\&=\pm {\frac {4\pi }{\lambda }}{\sqrt {\frac {1-\cos 2\theta _{s}}{2}}}\\&={\frac {4\pi }{\lambda }}{\sqrt {{\frac {1}{2}}\left(1-\cos \phi _{g}\cos \theta _{g}\right)}}\end{alignedat}}}$

Arbitrary Point

TBD

See Also

• Geometry:TSAXS 3D