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M. V. Shakhov

Publications and source records attributed to M. V. Shakhov.

2 recordsLinked to original sources

Characteristic features of the resonant trident process in the field of a strong monochromatic electromagnetic wave

The characteristic features of the resonant trident process (Oleinik resonances) have been theoretically studied in a wide range of frequencies and intensities of a circularly polarized strong electromagnetic wave. The resonant trident process is defined by two characteristic quantum energies: the characteristic energy of the nonlinear Compton effect and the characteristic energy of the nonlinear Breit-Wheeler process. These characteristic energies depend significantly on the frequency and intensity of the wave, as well as on the angle between the momenta of the initial electrons and the electromagnetic wave. The resonant trident process is effective when the energy of the initial electrons is greater than or on the order of magnitude of the corresponding characteristic energies. It is shown that quantum entanglement of final particles takes place in this resonant process. An important aspect of the resonant trident process is the equality of the energies of the electron and positron pairs. Analytical expressions for the differential rates of the resonant trident process on the energy of final particles are obtained. The corresponding analytical expressions for full rates have also been obtained. It is shown that the rate data of the resonant trident process in the field of optical and X-ray wave frequencies significantly exceed the corresponding rate of the non-resonant trident process. Results obtained can be used in experiments at leading laser centers, as well as to explain QED processes in strong X-ray fields near neutron stars and magnetars.

hep-ph↗

Quantum entanglement of final particle states in the resonant trident pair production in a strong electromagnetic wave

The resonant trident pair production process in the collision of ultrarelativistic electrons with a strong electromagnetic wave is theoretically studied. Under resonant conditions, the intermediate virtual gamma-quantum becomes real. As a result, the original resonant trident pair production process effectively splits into two first-order processes by the fine structure constant: the electromagnetic field-stimulated Compton-effect and the electromagnetic field-stimulated Breit-Wheeler process. The kinematics of the resonant trident pair production process are studied in detail. It is shown that there are two different cases for the energies and outgoing angles of final particles (an electron and an electron-positron pair) in which their quantum entanglement is realized. In the first case, the energy and outgoing angles of final ultrarelativistic particles are uniquely determined by the parameters of the electromagnetic field-stimulated Compton-effect (the outgoing angle of the final electron and the quantum parameter of the Compton effect). In the second case, the energy and outgoing angles of final particles are uniquely determined by the electromagnetic field-stimulated Breit-Wheeler process (the electron-positron pair outgoing angle and the Breit-Wheeler quantum parameter). It is shown that in a sufficiently wide range of frequencies and intensities of a strong electromagnetic wave, and in the case of ultrarelativistic initial electrons, the differential probability of the resonant trident pair production process with simultaneous registration of the outgoing angles of final particles can significantly (by several orders of magnitude) exceed the total probability of the electromagnetic field-stimulated Compton-effect.

hep-ph↗