Light-front Gauge Propagator Reexamined-ii
نویسندگان
چکیده
Gauge fields are special in the sense that they are invariant under gauge transformations and " ipso facto " they lead to problems when we try quantizing them straightforwardly. To circumvent this problem we need to specify a gauge condition to fix the gauge so that the fields that are connected by gauge invariance are not overcounted in the process of quantization. The usual way we do this in the light-front is through the introduction of a Lagrange multiplier, (n · A) 2 , where nµ is the external light-like vector, i.e., n 2 = 0, and Aµ is the vector potential. This leads to the usual light-front propagator with all the ensuing characteristics such as the prominent (k · n) −1 pole which has been the subject of much research. However, it has been for long recognized that this procedure is incomplete in that there remains a residual gauge freedom still to be fixed by some " ad hoc " prescription, and this is normally worked out to remedy some unwieldy aspect that emerges along the way. In this work we propose two Lagrange multipliers with distinct coefficients for the light-front gauge that leads to the correctly defined propagator with no residual gauge freedom left. This is accomplished via (n · A) 2 + (∂ · A) 2 terms in the Lagrangian density. These lead to a well-defined and exact though Lorentz non invariant propagator.
منابع مشابه
ar X iv : h ep - t h / 03 04 06 5 v 3 1 2 Se p 20 03 Light - front gauge propagator reexamined - II
Gauge fields are special in the sense that they are invariant under gauge transformations and " ipso facto " they lead to problems when we try quantizing them straightforwardly. To circumvent this problem we need to specify a gauge condition to fix the gauge so that the fields that are connected by gauge invariance are not overcounted in the process of quantization. The usual way we do this in ...
متن کاملar X iv : h ep - t h / 03 04 06 5 v 1 7 A pr 2 00 3 Light - front gauge propagator reexamined - II Alfredo
Gauge fields are special in the sense that they are invariant under gauge transformations and " ipso facto " they lead to problems when we try quantizing them straightforwardly. To circumvent this problem we need to specify a gauge condition to fix the gauge so that the fields that are connected by gauge invariance are not overcounted in the process of quantization. The usual way we do this in ...
متن کاملLight-front Gauge Propagator Reexamined
Gauge fields are special in the sense that they are invariant under gauge transformations and " ipso facto " they lead to problems when we try quantizing them straightforwardly. To circumvent this problem we need to specify a gauge condition to fix the gauge so that the fields that are connected by gauge invariance are not overcounted in the process of quantization. The usual way we do this in ...
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At the classical level, the inverse differential operator for the quadratic term in the gauge field Lagrangian density fixed in the light front through the multiplier (n · A) yields the standard two term propagator with single unphysical pole of the type (k · n). Upon canonical quantization on the light-front, there emerges a third term of the form (knn)(k ·n). This third term in the propagator...
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In this work we propose two Lagrange multipliers with distinct coefficients for the light-front gauge that leads to the complete (non-reduced) propagator. This is accomplished via (n · A) 2 + (∂ · A) 2 terms in the La-grangian density. These lead to a well-defined and exact though Lorentz non invariant light front propagator.
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