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Main Authors: Tang, H., Tangtartharakul, K., Babjak, R., Yeh, I-L., Albert, F., Chen, H., Campbell, P. T., Ma, Y., Nilson, P. M., Russell, B. K., Shaw, J. L., Thomas, A. G. R., Vranic, M., Arefiev, A. V., Willingale, L.
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2402.08026
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author Tang, H.
Tangtartharakul, K.
Babjak, R.
Yeh, I-L.
Albert, F.
Chen, H.
Campbell, P. T.
Ma, Y.
Nilson, P. M.
Russell, B. K.
Shaw, J. L.
Thomas, A. G. R.
Vranic, M.
Arefiev, A. V.
Willingale, L.
author_facet Tang, H.
Tangtartharakul, K.
Babjak, R.
Yeh, I-L.
Albert, F.
Chen, H.
Campbell, P. T.
Ma, Y.
Nilson, P. M.
Russell, B. K.
Shaw, J. L.
Thomas, A. G. R.
Vranic, M.
Arefiev, A. V.
Willingale, L.
contents Direct Laser Acceleration (DLA) of electrons during a high-energy, picosecond laser interaction with an underdense plasma has been demonstrated to be substantially enhanced by controlling the laser focusing geometry. Experiments using the OMEGA EP facility measured electrons accelerated to maximum energies exceeding 120 times the ponderomotive energy under certain laser focusing, pulse energy, and plasma density conditions. Two-dimensional particle-in-cell simulations show that the laser focusing conditions alter the laser field evolution, channel fields generation, and electron oscillation, all of which contribute to the final electron energies. The optimal laser focusing condition occurs when the transverse oscillation amplitude of the accelerated electron in the channel fields matches the laser beam width, resulting in efficient energy gain. Through this observation, a simple model was developed to calculate the optimal laser focal spot size in more general conditions and is validated by experimental data.
format Preprint
id arxiv_https___arxiv_org_abs_2402_08026
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Influence of Laser Focusing Conditions on the Direct Laser Acceleration of Electrons
Tang, H.
Tangtartharakul, K.
Babjak, R.
Yeh, I-L.
Albert, F.
Chen, H.
Campbell, P. T.
Ma, Y.
Nilson, P. M.
Russell, B. K.
Shaw, J. L.
Thomas, A. G. R.
Vranic, M.
Arefiev, A. V.
Willingale, L.
Plasma Physics
Direct Laser Acceleration (DLA) of electrons during a high-energy, picosecond laser interaction with an underdense plasma has been demonstrated to be substantially enhanced by controlling the laser focusing geometry. Experiments using the OMEGA EP facility measured electrons accelerated to maximum energies exceeding 120 times the ponderomotive energy under certain laser focusing, pulse energy, and plasma density conditions. Two-dimensional particle-in-cell simulations show that the laser focusing conditions alter the laser field evolution, channel fields generation, and electron oscillation, all of which contribute to the final electron energies. The optimal laser focusing condition occurs when the transverse oscillation amplitude of the accelerated electron in the channel fields matches the laser beam width, resulting in efficient energy gain. Through this observation, a simple model was developed to calculate the optimal laser focal spot size in more general conditions and is validated by experimental data.
title The Influence of Laser Focusing Conditions on the Direct Laser Acceleration of Electrons
topic Plasma Physics
url https://arxiv.org/abs/2402.08026