Enhancement of guided electromagnetic wave by pre-plasma formation in laser–plasma interaction

Author:

Li Y. Z.12ORCID,Wu M. J.12ORCID,Li D. Y.12ORCID,Yang T.12ORCID,Cheng H.12ORCID,Xia Y. D.12,Yan Y.12ORCID,Geng Y. X.123ORCID,Zhao Y. Y.123,Lin C.123ORCID,Yan X. Q.123ORCID

Affiliation:

1. State Key Laboratory of Nuclear Physics and Technology, and Key Laboratory of HEDP of the Ministry of Education, CAPT, Peking University 1 , Beijing 100871, China

2. Beijing Laser Acceleration Innovation Center 2 , Huairou, Beijing 101400, China

3. Institute of Guangdong Laser Plasma Technology 3 , Baiyun, Guangzhou 510540, China

Abstract

Previous studies have shown that adding a section of critical density plasma on the front surface of solid target can effectively improve the laser energy absorption efficiency. Here, we have investigated laser–plasma interactions with different scale lengths of plasma in front of the target created by a pre-ablation laser pulse. A variety of experimental diagnostics employed together with particle-in-cell simulations give us deep insight into these processes. We found that the laser-induced electromagnetic pulse (EMP) intensity inside the target chamber and the target normal sheath acceleration sheath field accelerated protons were promoted using pre-plasma. The transient current due to hot electron emissions is considered to be one of the main radiation sources of EMP emissions within our measurement bandwidth. In our experiment, this current was guided to a grounded conductive wire attached to the rear surface of the target and measured by proton dynamic imaging technique. The discharging currents together with the guided fields were enhanced more than twice. The reflection spectra of experiments and simulations are compared, which reveal that the energy absorption efficiency was increased with proper plasma scale length, resulting in all the measured signals promoted.

Funder

National Natural Science Foundation of China

National Grand Instrument Project

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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