A particle acceleration mechanism by radiation pressure of precursor waves in a relativistic shock is studied. For a relativistic, perpendicular shock with the upstream bulk Lorentz factor of γ 1 ≫ 1, large-amplitude electromagnetic (light) waves are known to be excited in the shock front due to the synchrotron maser instability, and those waves can propagate toward upstream as precursor waves. We find that nonthermal, high-energy electrons and ions can be quickly produced by an action of electrostatic wakefields generated by the ponderomotive force of the precursor waves. The particles can be quickly accelerated up to ε max /γ 1 m e c 2 ∼ γ 1 in the upstream coherent wakefield region, and they can be further accelerated during the nonlinear stage of the wakefield evolution. The maximum attainable energy is estimated by ε max /γ 1 m e c 2 ∼ L sys /( c /ω pe ) , where L sys and c /ω pe are the size of an astrophysical object and the electron inertial length, respectively.
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