|
|
Line 12: |
Line 12: |
| </math> | | </math> |
| | | |
− | ==Expansion== | + | ==Expansion (incorrect)== |
| '''WARNING: This incorrectly ignores the complex components.''' | | '''WARNING: This incorrectly ignores the complex components.''' |
| ===Terms=== | | ===Terms=== |
Line 111: |
Line 111: |
| + 2 \times R_i^2T_fR_f F_{-1}F_{+2} | | + 2 \times R_i^2T_fR_f F_{-1}F_{+2} |
| \end{align} | | \end{align} |
| + | </math> |
| + | |
| + | ==Expansion== |
| + | |
| + | ===Terms=== |
| + | If one expands the <math>|...|^2</math> of the DWBA, one obtains 16 terms: |
| + | |
| + | <math> |
| + | |
| + | \begin{matrix} |
| + | & (T_i^* T_f^*) & (T_i^* R_f^*) & (R_i^* T_f^*) & (R_i^* R_f^*) \\ |
| + | (T_i T_f) & T_i T_i^* T_f T_f^* & T_i^2 T_f R_f & T_iR_iT_f^2 & T_iR_iT_fR_f \\ |
| + | (T_i R_f) & T_i^2T_fR_f & T_i^2R_f^2 & T_iR_iT_fR_f & T_iR_iR_f^2 \\ |
| + | (R_i T_f) & T_iR_iT_f^2 & T_iR_iT_fR_f & R_i^2T_f^2 & R_i^2T_fR_f \\ |
| + | (R_i R_f) & T_iR_iT_fR_f & T_iR_iR_f^2 & R_i^2T_fR_f & R_i^2R_f^2 \\ |
| + | \end{matrix} |
| + | |
| </math> | | </math> |
| | | |
Revision as of 17:31, 12 March 2018
DWBA Equation in thin film
Using the notation for compactness, the DWBA equation inside a thin film can be written:
Expansion (incorrect)
WARNING: This incorrectly ignores the complex components.
Terms
If one expands the of the DWBA, one obtains 16 terms:
Equation
The equation can thus be expanded as:
Simplification
We can rearrange to:
We can rewrite in a more compact form using the notation and :
Expansion
Terms
If one expands the of the DWBA, one obtains 16 terms:
Breaking into components
The experimental data can be broken into contributions from the transmitted channel and reflected channel :
We define the ratio between the channels to be:
Such that one can compute the two components from:
and: