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  Dirac Equation in General Relativity

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Dirac equation for the massless fermions in curved spase time is $γ^ae^μ_aD_μΨ=0$, where $e^μ_a$ are the tetrads. I have to show that Dirac spinors obey the following equation: $$(−D_μD^μ+\frac{1}{4}R)Ψ=0\qquad(1)$$

where $R$ is the Ricci scalar.

I already know that $[D_\mu,D_\nu]A^\rho={{R_{\mu\nu}}^\rho}_\sigma A^\sigma$, but a key point is to know what $[D_\mu,D_\nu]\Psi$ is.

($D_μΨ=∂_μΨ+A^{ab}_μΣ_{ab}$ is the covariant derivative of the spinor field and $Σ_{ab}$ the Lorentz generators involving gamma matrices).

This post imported from StackExchange Physics at 2014-03-22 17:27 (UCT), posted by SE-user Gauge
asked Jan 16, 2013 in Theoretical Physics by Gauge (10 points) [ no revision ]
The right way to solve it is to act with $D_\mu$ from the left on your Dirac GR equation again. Once you do so, you must realize that the new covariant derivative also acts on the tetrads which means that it effectively differentiates the metric and ultimately produces the Ricci scalar term. However, you must realize that the adjective "covariant" means that it has two new connection terms, one from the curved spacetime metric and one from the electromagnetic potential. The latter isn't needed at all for your desired derivation - the gauge field is just kept everywhere as a part of $D_\mu$.

This post imported from StackExchange Physics at 2014-03-22 17:27 (UCT), posted by SE-user Luboš Motl
Related is physics.stackexchange.com/questions/51269/… Are these really distinct? If not, might consider asking mods to merge them.

This post imported from StackExchange Physics at 2014-03-22 17:27 (UCT), posted by SE-user twistor59
Thanks for the comment, but $D_\mu e^\nu_a$ is not zero?

This post imported from StackExchange Physics at 2014-03-22 17:27 (UCT), posted by SE-user Gauge
Aren't the tetrads covariantly constant provided you include both the Christoffel symbols and the spin connection?

This post imported from StackExchange Physics at 2014-03-22 17:27 (UCT), posted by SE-user twistor59
Yes, they are! Can you write explicitly what you mean for $D_\mu e^\nu_a$ and how this can solve the problem... I'm now a bit confused about the proper action of $D_\mu$ on tetrads.

This post imported from StackExchange Physics at 2014-03-22 17:27 (UCT), posted by SE-user Gauge
I would say the cov derivative of the tetrad is something like $ \partial_{\mu}e_{\nu}^a-\Gamma^{\sigma}_{\mu\nu}e_{\sigma}^a+\omega^{ab}_{\mu}e_‌​{\nu b}$ were $\omega^{ab}_{\mu}$ is the spin connection. (Greek is spacetime and latin is tetrad label, also I'm keeping any EM gauge stuff out of here). (PS I'm not claiming to have solved your problem!)

This post imported from StackExchange Physics at 2014-03-22 17:27 (UCT), posted by SE-user twistor59

1 Answer

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Denoting by $\gamma^a$ the Minkowski space gamma matrices with respect to the Lorentz tetrad $\{e^a\}$, and covariant derivative $D_a$, then the gammas are covariantly constant.

Start with the massless Dirac equation $$ \gamma^{b}D_{b}\Psi = 0$$

Act again with the Dirac operator $$\gamma^{a}D_{a}\gamma^{b}D_{b}\Psi=0 $$ So, since $D$ annihilates $\gamma$ $$\gamma^{a}\gamma^{b}D_{a}D_{b}\Psi = 0 $$ so $$\frac{1}{2}\{\gamma^{a},\gamma^{b}\}D_{a}D_{b}\Psi + \frac{1}{2}\gamma^{a}\gamma^{b}[D_a,D_b]\Psi = 0 \ \ (1) $$ But $$\{\gamma^{a},\gamma^{b}\}=2\eta^{ab} $$ and $$ [D_a,D_b]\Psi = {\mathcal{R}_{ab}}\Psi $$ Where ${\mathcal{R}}_{ab}$ is the spin-curvature (antisymmetric in a and b). ${\mathcal{R}}_{ab}$ satisfies the identity $$ -\gamma^b{\mathcal{R}}_{ab} = {\mathcal{R}}_{ab}\gamma^b = \frac{1}{2}\gamma^b R_{ab}$$ where $R_{ab}$ is the Ricci tensor (in the Lorentz tetrad). so (1) becomes $$ [D^aD_a+\frac{1}{4}\gamma^a\gamma^bR_{ab}]\Psi = 0 $$ i.e. $$ [D^aD_a-\frac{1}{4}R]\Psi = 0 $$

This post imported from StackExchange Physics at 2014-03-22 17:27 (UCT), posted by SE-user twistor59
answered Jan 17, 2013 by twistor59 (2,500 points) [ no revision ]

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