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Coaction of strong electrical fields in laser irradiated thin foils and its relation to field dynamics at the plasma-vacuum interface. / Abicht, F.; Schnürer, M.; Bränzel, J.; Priebe, G.; Andreev, A. A.; Koschitzki, Ch; Steinke, S.; Toncian, T.; Willi, O.; Sandner, W.

Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III. 2013. 87790V (Proceedings of SPIE - The International Society for Optical Engineering; Том 8779).

Результаты исследований: Публикации в книгах, отчётах, сборниках, трудах конференцийстатья в сборнике материалов конференциинаучнаяРецензирование

Harvard

Abicht, F, Schnürer, M, Bränzel, J, Priebe, G, Andreev, AA, Koschitzki, C, Steinke, S, Toncian, T, Willi, O & Sandner, W 2013, Coaction of strong electrical fields in laser irradiated thin foils and its relation to field dynamics at the plasma-vacuum interface. в Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III., 87790V, Proceedings of SPIE - The International Society for Optical Engineering, Том. 8779, Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III, Prague, Чехия, 15/04/13. https://doi.org/10.1117/12.2017395

APA

Abicht, F., Schnürer, M., Bränzel, J., Priebe, G., Andreev, A. A., Koschitzki, C., Steinke, S., Toncian, T., Willi, O., & Sandner, W. (2013). Coaction of strong electrical fields in laser irradiated thin foils and its relation to field dynamics at the plasma-vacuum interface. в Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III [87790V] (Proceedings of SPIE - The International Society for Optical Engineering; Том 8779). https://doi.org/10.1117/12.2017395

Vancouver

Abicht F, Schnürer M, Bränzel J, Priebe G, Andreev AA, Koschitzki C и пр. Coaction of strong electrical fields in laser irradiated thin foils and its relation to field dynamics at the plasma-vacuum interface. в Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III. 2013. 87790V. (Proceedings of SPIE - The International Society for Optical Engineering). https://doi.org/10.1117/12.2017395

Author

Abicht, F. ; Schnürer, M. ; Bränzel, J. ; Priebe, G. ; Andreev, A. A. ; Koschitzki, Ch ; Steinke, S. ; Toncian, T. ; Willi, O. ; Sandner, W. / Coaction of strong electrical fields in laser irradiated thin foils and its relation to field dynamics at the plasma-vacuum interface. Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III. 2013. (Proceedings of SPIE - The International Society for Optical Engineering).

BibTeX

@inproceedings{4bd1314ffa9d476fa35fb0a5d8b89768,
title = "Coaction of strong electrical fields in laser irradiated thin foils and its relation to field dynamics at the plasma-vacuum interface",
abstract = "The effective action of strong electrical fields on a beam of protons passing through a laser irradiated thin foil has been investigated. The energy distribution function of protons propagating along the surface normal changes in a pronounced way, exhibiting a gap in the spectrum accompanied by up to two local maxima. The temporal behavior is set into context with expectations derived from the evolution of strong electrical fields at the plasma-vacuum interface, usually being considered responsible for fast ion acceleration during the initial stage of laser driven plasma expansion. Our investigation reveals complex field effects in thin foils when irradiated with intense and ultra-short pulses with a very high temporal contrast. The experiments were performed with a laser accelerated proton beam, the probe, traversing a {"}plasma slab{"} created by ultra-short ( 80fs), high-intensity (~ 1 × 1019 W/cm2) laser irradiation of a 30 nm to 800 nm thick foil. Laser pulses with different temporal contrast and pulse duration have been used, both for the probe and for the plasma slab creation (the pump). An analytical model is discussed to approach an understanding of the observation.",
keywords = "Intense laser matter interaction, Laser-particle-acceleration, Proton imaging, Strong fields",
author = "F. Abicht and M. Schn{\"u}rer and J. Br{\"a}nzel and G. Priebe and Andreev, {A. A.} and Ch Koschitzki and S. Steinke and T. Toncian and O. Willi and W. Sandner",
year = "2013",
doi = "10.1117/12.2017395",
language = "English",
isbn = "9780819495815",
series = "Proceedings of SPIE - The International Society for Optical Engineering",
booktitle = "Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III",
note = "Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III ; Conference date: 15-04-2013 Through 18-04-2013",

}

RIS

TY - GEN

T1 - Coaction of strong electrical fields in laser irradiated thin foils and its relation to field dynamics at the plasma-vacuum interface

AU - Abicht, F.

AU - Schnürer, M.

AU - Bränzel, J.

AU - Priebe, G.

AU - Andreev, A. A.

AU - Koschitzki, Ch

AU - Steinke, S.

AU - Toncian, T.

AU - Willi, O.

AU - Sandner, W.

PY - 2013

Y1 - 2013

N2 - The effective action of strong electrical fields on a beam of protons passing through a laser irradiated thin foil has been investigated. The energy distribution function of protons propagating along the surface normal changes in a pronounced way, exhibiting a gap in the spectrum accompanied by up to two local maxima. The temporal behavior is set into context with expectations derived from the evolution of strong electrical fields at the plasma-vacuum interface, usually being considered responsible for fast ion acceleration during the initial stage of laser driven plasma expansion. Our investigation reveals complex field effects in thin foils when irradiated with intense and ultra-short pulses with a very high temporal contrast. The experiments were performed with a laser accelerated proton beam, the probe, traversing a "plasma slab" created by ultra-short ( 80fs), high-intensity (~ 1 × 1019 W/cm2) laser irradiation of a 30 nm to 800 nm thick foil. Laser pulses with different temporal contrast and pulse duration have been used, both for the probe and for the plasma slab creation (the pump). An analytical model is discussed to approach an understanding of the observation.

AB - The effective action of strong electrical fields on a beam of protons passing through a laser irradiated thin foil has been investigated. The energy distribution function of protons propagating along the surface normal changes in a pronounced way, exhibiting a gap in the spectrum accompanied by up to two local maxima. The temporal behavior is set into context with expectations derived from the evolution of strong electrical fields at the plasma-vacuum interface, usually being considered responsible for fast ion acceleration during the initial stage of laser driven plasma expansion. Our investigation reveals complex field effects in thin foils when irradiated with intense and ultra-short pulses with a very high temporal contrast. The experiments were performed with a laser accelerated proton beam, the probe, traversing a "plasma slab" created by ultra-short ( 80fs), high-intensity (~ 1 × 1019 W/cm2) laser irradiation of a 30 nm to 800 nm thick foil. Laser pulses with different temporal contrast and pulse duration have been used, both for the probe and for the plasma slab creation (the pump). An analytical model is discussed to approach an understanding of the observation.

KW - Intense laser matter interaction

KW - Laser-particle-acceleration

KW - Proton imaging

KW - Strong fields

UR - http://www.scopus.com/inward/record.url?scp=84880735385&partnerID=8YFLogxK

U2 - 10.1117/12.2017395

DO - 10.1117/12.2017395

M3 - Conference contribution

AN - SCOPUS:84880735385

SN - 9780819495815

T3 - Proceedings of SPIE - The International Society for Optical Engineering

BT - Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III

T2 - Laser Acceleration of Electrons, Protons, and Ions II; and Medical Applications of Laser-Generated Beams of Particles II; and Harnessing Relativistic Plasma Waves III

Y2 - 15 April 2013 through 18 April 2013

ER -

ID: 85660783