Skip to content
Snippets Groups Projects
Commit 7827d292 authored by Lars kleyn Winkel's avatar Lars kleyn Winkel
Browse files

Update src/7_tight_binding_model_sol.md

parent 2cb57899
Branches
No related tags found
1 merge request!58Solutions lecture 7
Pipeline #27941 passed
......@@ -55,7 +55,7 @@ pyplot.tight_layout();
### Subquestion 4
Hint: The group velocity is given as $v = \frac{d\omega}{dk}$, draw a coordinate system **under** or **above** the dispersion graph with $k$ on the x-axis in which you draw $\frac{d\omega}{dk}$. Draw a coordinate system **next** to the dispersion with *$g(\omega)$ on the y-axis* in which you graph $\big(\frac{d\omega}{dk}\big)^{-1} \approx \frac{1}{\frac{d\omega}{dk}}$.
Hint: The group velocity is given as $v = \frac{d\omega}{dk}$, draw a coordinate system **under** or **above** the dispersion graph with $k$ on the x-axis in which you draw $\frac{d\omega}{dk}$. Draw a coordinate system **next** to the dispersion with *$g(\omega)$ on the y-axis* in which you graph $\big(\frac{d\omega}{dk}\big)^{-1} \approx \frac{1}{\frac{d\omega}{dk}}$ (This is **definately** not an equality sign, but you use this 'approximation' to graph the density of states).
??? hint "Plot for density of states"
......
0% Loading or .
You are about to add 0 people to the discussion. Proceed with caution.
Please register or to comment