Dirac equation: Difference between revisions

How to construct

Starting from the relativistic relation between energy and momentum:

${\displaystyle E^{2}={\mathbf {p}}^{2}c^{2}+m^{2}c^{4}}$

or ${\displaystyle E=c{\sqrt {{\mathbf {p}}^{2}+m^{2}c^{2}}}}$

From this equation we can not directly replace ${\displaystyle E,{\mathbf {p}}}$ by the corresponding operators since we don't have the definition for the square root of an operator. Therefore, first we need to linearize this equation as follows:

${\displaystyle E=c{\sqrt {{\mathbf {p}}^{2}+m^{2}c^{2}}}=c{\sqrt {(p_{x}^{2}+p_{y}^{2}+p_{z}^{2})+m^{2}c^{2}}}=c(\alpha _{x}p_{x}+\alpha _{y}p_{y}+\alpha _{z}p_{z})+\beta mc^{2}}$

where ${\displaystyle {\mathbf {\alpha }}_{x},\alpha _{y},\alpha _{z}}$ and ${\displaystyle {\mathbf {\beta }}}$ are some operators independent of ${\displaystyle {\mathbf {p}}}$.

From this it follows that:

${\displaystyle c^{2}(p_{x}^{2}+p_{y}^{2}+p_{z}^{2}+m^{2}c^{2})=[c(\alpha _{x}p_{x}+\alpha _{y}p_{y}+\alpha _{z}p_{z})+\beta mc^{2}].[c(\alpha _{x}p_{x}+\alpha _{y}p_{y}+\alpha _{z}p_{z})+\beta mc^{2}]}$

Expanding the right hand side and comparing it with the left hand side, we obtain the following conditions for ${\displaystyle {\mathbf {\alpha }}_{x},\alpha _{y},\alpha _{z}}$ and ${\displaystyle {\mathbf {\beta }}}$ :

${\displaystyle \alpha _{i}^{2}=\beta ^{2}=1}$

${\displaystyle {\mathbf {\alpha }}_{i}\alpha _{j}+\alpha _{j}\alpha _{i}=\{\alpha _{i},\alpha _{j}\}=0}$

${\displaystyle {\mathbf {\alpha }}_{i}\beta +\alpha _{j}\beta =\{\alpha _{i},\beta \}=0}$

where ${\displaystyle i=1,2,3}$ corresponds to ${\displaystyle x,y,z}$