On shell and off shell

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In physics, particularly in quantum field theory, configurations of a physical system that satisfy classical equations of motion are called on the mass shell (on shell); while those that do not are called off the mass shell (off shell). In quantum field theory, virtual particles are termed off shell because they do not satisfy the energy–momentum relation; real exchange particles do satisfy this relation and are termed on (mass) shell.[1][2][3] In classical mechanics for instance, in the action formulation, extremal solutions to the variational principle are on shell and the Euler–Lagrange equations give the on-shell equations. Noether's theorem regarding differentiable symmetries of physical action and conservation laws is another on-shell theorem.

Mass shell

File:Hyperboloid Of Two Sheets Quadric.png
Points on the hyperboloid surface (the "shell") are solutions to the equation.

Mass shell is a synonym for mass hyperboloid, meaning the hyperboloid in energymomentum space describing the solutions to the equation:

E2|p|2c2=m02c4,

the mass–energy equivalence formula which gives the energy E in terms of the momentum p and the rest mass m0 of a particle. The equation for the mass shell is also often written in terms of the four-momentum; in Einstein notation with metric signature (+,−,−,−) and units where the speed of light c=1, as pμpμp2=m02. In the literature, one may also encounter pμpμ=m02 if the metric signature used is (−,+,+,+). The four-momentum of an exchanged virtual particle X is qμ, with mass q2=mX2. The four-momentum qμ of the virtual particle is the difference between the four-momenta of the incoming and outgoing particles. Virtual particles corresponding to internal propagators in a Feynman diagram are in general allowed to be off shell, but the amplitude for the process will diminish depending on how far off shell they are.[4] This is because the q2-dependence of the propagator is determined by the four-momenta of the incoming and outgoing particles. The propagator typically has singularities on the mass shell.[5] When speaking of the propagator, negative values for E that satisfy the equation are thought of as being on shell, though the classical theory does not allow negative values for the energy of a particle. This is because the propagator incorporates into one expression the cases in which the particle carries energy in one direction, and in which its antiparticle carries energy in the other direction; negative and positive on-shell E then simply represent opposing flows of positive energy.

Scalar field

An example comes from considering a scalar field in D-dimensional Minkowski space. Consider a Lagrangian density given by (ϕ,μϕ). The action

S=dDx(ϕ,μϕ)

The Euler–Lagrange equation for this action can be found by varying the field and its derivative and setting the variation to zero, and is:

μ(μϕ)=ϕ

Now, consider an infinitesimal spacetime translation xμxμ+αμ. The Lagrangian density is a scalar, and so will infinitesimally transform as δ=αμμ under the infinitesimal transformation. On the other hand, by Taylor expansion, we have in general

δ=ϕδϕ+(μϕ)δ(μϕ)

Substituting for δ and noting that δ(μϕ)=μ(δϕ) (since the variations are independent at each point in spacetime):

αμμ=ϕαμμϕ+(νϕ)αμμνϕ

Since this has to hold for independent translations αμ=(ϵ,0,...,0),(0,ϵ,...,0),..., we may "divide" by αμ and write:

μ=ϕμϕ+(νϕ)μνϕ

This is an example of an equation that holds off shell, since it is true for any fields configuration regardless of whether it respects the equations of motion (in this case, the Euler–Lagrange equation given above). However, we can derive an on shell equation by simply substituting the Euler–Lagrange equation:

μ=ν(νϕ)μϕ+(νϕ)μνϕ

We can write this as:

ν((νϕ)μϕδμν)=0

And if we define the quantity in parentheses as Tνμ, we have:

νTνμ=0

This is an instance of Noether's theorem. Here, the conserved quantity is the stress–energy tensor, which is only conserved on shell, that is, if the equations of motion are satisfied.

References

  1. Thomson, M. (2013). Modern particle physics. Cambridge University Press, ISBN 978-1107034266, pp. 117–119.
  2. Cachazo, Freddy (Dec 21, 2012). "A Deeper Dive: On-Shell and Off-Shell". Perimeter Institute for Theoretical Physics.
  3. Arkani-Hamed, N. (Dec 21, 2012). "Scattering Amplitudes and the Positive Grassmannian". arXiv:1212.5605 [hep-th].
  4. Jaeger, Gregg (2019). "Are virtual particles less real?" (PDF). Entropy. 21 (2): 141. Bibcode:2019Entrp..21..141J. doi:10.3390/e21020141. PMC 7514619. PMID 33266857.
  5. Thomson, M. (2013). Modern particle physics. Cambridge University Press, ISBN 978-1107034266, p.119.