Particle transport and electric fields in a laser-generated focused proton beam

Summary form only given. Recent experiments and simulations of proton generation and focusing in cone geometries have led to a better understanding of the important effects of the electric fields in and around the focused beam. 1 The surrounding cone structure is shown to improve the focusing signif...

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Published in:2012 Abstracts IEEE International Conference on Plasma Science p. 1C-1
Main Authors: Foord, M. E., Bartal, T., McGuffey, C., Wei, M. S., Qiao, B., Bellei, C., Key, M. H., Patel, P. K., Jarrott, L. C., Higginson, D. P., Stephens, R. B., Beg, F. N.
Format: Conference Proceeding
Language:English
Published: IEEE 01-07-2012
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Abstract Summary form only given. Recent experiments and simulations of proton generation and focusing in cone geometries have led to a better understanding of the important effects of the electric fields in and around the focused beam. 1 The surrounding cone structure is shown to improve the focusing significantly, resulting in beam fluence diameters ≈ 55µm for protons with energies Ep >3 MeV. PIC-hybrid simulations predict that a strong sheath field on the inner surface of the cone wall channels the beam and results in a reduced beam diameter. The electric fields in the plasma due to the hot electron pressure also affect the focusing and particle trajectories, bending the beam near the axis. This combination of fields leads to complicated trajectories, inconsistent with simple linear acceleration near the target surface. Simulations predict that further improvement in focusing is possible by better control of the laser beam uniformity.
AbstractList Summary form only given. Recent experiments and simulations of proton generation and focusing in cone geometries have led to a better understanding of the important effects of the electric fields in and around the focused beam. 1 The surrounding cone structure is shown to improve the focusing significantly, resulting in beam fluence diameters ≈ 55µm for protons with energies Ep >3 MeV. PIC-hybrid simulations predict that a strong sheath field on the inner surface of the cone wall channels the beam and results in a reduced beam diameter. The electric fields in the plasma due to the hot electron pressure also affect the focusing and particle trajectories, bending the beam near the axis. This combination of fields leads to complicated trajectories, inconsistent with simple linear acceleration near the target surface. Simulations predict that further improvement in focusing is possible by better control of the laser beam uniformity.
Author Qiao, B.
Bellei, C.
Higginson, D. P.
Key, M. H.
Jarrott, L. C.
Beg, F. N.
Bartal, T.
McGuffey, C.
Stephens, R. B.
Wei, M. S.
Patel, P. K.
Foord, M. E.
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  surname: McGuffey
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  surname: Wei
  fullname: Wei, M. S.
  organization: General Atomics, San Diego, California 92121, USA
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  organization: Center for Energy Research, Univ. of California-San Diego, La Jolla, 92093, USA
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  organization: Lawrence Livermore National Laboratory, California 94551, USA
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  surname: Patel
  fullname: Patel, P. K.
  organization: Lawrence Livermore National Laboratory, California 94551, USA
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  givenname: L. C.
  surname: Jarrott
  fullname: Jarrott, L. C.
  organization: Center for Energy Research, Univ. of California-San Diego, La Jolla, 92093, USA
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  givenname: D. P.
  surname: Higginson
  fullname: Higginson, D. P.
  organization: Lawrence Livermore National Laboratory, California 94551, USA
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  givenname: R. B.
  surname: Stephens
  fullname: Stephens, R. B.
  organization: General Atomics, San Diego, California 92121, USA
– sequence: 12
  givenname: F. N.
  surname: Beg
  fullname: Beg, F. N.
  organization: Center for Energy Research, Univ. of California-San Diego, La Jolla, 92093, USA
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Snippet Summary form only given. Recent experiments and simulations of proton generation and focusing in cone geometries have led to a better understanding of the...
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StartPage 1C-1
SubjectTerms Focusing
Geometry
Laser beams
Particle beams
Plasmas
Protons
USA Councils
Title Particle transport and electric fields in a laser-generated focused proton beam
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