Unveiling the beam-wake interactions in plasma wakefield acceleration

Plasma wakefield accelerators, powered by high-current particle beams, promise compact and cost-effective sources of energetic leptons for future light sources and particle colliders. The interplay between the driving particle bunch and the plasma wakefields fundamentally determines accelerator performance. Gaining direct insight into these interactions is therefore key to realizing high-efficiency, high-quality particle acceleration. Using femtosecond ultrarelativistic electron microscopy, we characterize in situ both the wakefield and the driving bunch from a single-shot image with unprecedented detail. By systematically varying the driver charge, we capture the transitions from linear to nonlinear wakefield regimes. We also observe beam-wake coupling manifested through wakefield flattening and transverse dynamics of the driving bunch. These observations provide crucial real-time insights into the highly transient and complex dynamics of beam-plasma interactions, paving the way for precise control of the acceleration process. Despite the potential of plasma wakefield acceleration, the interplay between plasma waves and their driving particle bunches is not yet fully characterized. Here, the authors demonstrate in situ, single-shot characterization of both the wakefield and the driving bunch using femtosecond ultrarelativistic electron microscopy, providing insight into the transition from linear to nonlinear wakefields and the associated beam–wake interactions.

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Publication Details

Journal
Nature Communications
Published
2026-09-16
DOI
https://doi.org/10.1038/s41467-026-77754-z
Primary Topic
Laser-Plasma Interactions and Diagnostics
Type
article
Field-Weighted Citation Impact
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article

Unveiling the beam-wake interactions in plasma wakefield acceleration

Y. Wan, E. Levine, Omri Seemann, E. Kroupp et al.
Nature Communications
Laser-Plasma Interactions and Diagnostics
article

Unveiling the beam-wake interactions in plasma wakefield acceleration

Y. Wan, E. Levine, Omri Seemann, E. Kroupp, I. A. Andriyash, Sheroy Tata, V. Malka, Bo Peng, Tao Jing
article en

Abstract

Plasma wakefield accelerators, powered by high-current particle beams, promise compact and cost-effective sources of energetic leptons for future light sources and particle colliders. The interplay between the driving particle bunch and the plasma wakefields fundamentally determines accelerator performance. Gaining direct insight into these interactions is therefore key to realizing high-efficiency, high-quality particle acceleration. Using femtosecond ultrarelativistic electron microscopy, we characterize in situ both the wakefield and the driving bunch from a single-shot image with unprecedented detail. By systematically varying the driver charge, we capture the transitions from linear to nonlinear wakefield regimes. We also observe beam-wake coupling manifested through wakefield flattening and transverse dynamics of the driving bunch. These observations provide crucial real-time insights into the highly transient and complex dynamics of beam-plasma interactions, paving the way for precise control of the acceleration process. Despite the potential of plasma wakefield acceleration, the interplay between plasma waves and their driving particle bunches is not yet fully characterized. Here, the authors demonstrate in situ, single-shot characterization of both the wakefield and the driving bunch using femtosecond ultrarelativistic electron microscopy, providing insight into the transition from linear to nonlinear wakefields and the associated beam–wake interactions.

Nature Communications
Centre National de la Recherche Scientifique (FR), École Polytechnique (FR), Zhengzhou University (CN), Weizmann Institute of Science (IL)
National Natural Science Foundation of China, Chinese Academy of Sciences, Natural Science Foundation of Henan Province, Institute of High Energy Physics, National Supercomputing Center, Korea Institute of Science and Technology Information, High Energy Physics
Affordable and clean energy
Openalex Percentile: Top 13%
Laser-Plasma Interactions and Diagnostics
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