Laser boron fusion reactor with picosecond petawatt block ignition

Heinrich Hora, Shalom Eliezer, Jiaxiang Wang, Georg Korn, Noaz Nissim, Yan Xia Xu, Paraskevas Lalousis, Gotz J. Kirchhoff, George H. Miley

Research output: Contribution to journalReview articlepeer-review

6 Scopus citations

Abstract

Fusion of hydrogen with the boron isotope 11, H11B at local thermal equilibrium, is 105 times more difficult than fusion of deuterium and tritium (DT). If, in contrast, extreme nonequilibrium plasma conditions are used with picoseconds laser pulses of more than 10-PW power, the difficulties for fusion of H11B change to the level of DT. This is based on a nonthermal transfer of laser energy into macroscopic plasma motion by nonlinear (ponderomotive) forces as theoretically predicted and experimentally confirmed as ultrahigh acceleration. Besides, elastic nuclear collisions of the alpha particles from H11B reactions result in an avalanche process such that the energy gain from H11B fusion is nine orders of magnitudes above the classical values. In contrast to preceding laser fusion with spherical compression of the fuel, the side-on direct drive fusion of cylindrical uncompressed solid boron fuel trapped by magnetic fields above kilotesla permits a reactor design with only one single laser beam for ignition within a spherical reactor. It appears to be potentially possible with present day technology to build a reactor for environmentally fully clean, low-cost, and lasting power generation.

Original languageEnglish
Pages (from-to)1191-1197
Number of pages7
JournalIEEE Transactions on Plasma Science
Volume46
Issue number5
DOIs
StatePublished - May 2018

Keywords

  • Boron
  • fusion reactor design
  • inertial confinement
  • laser fusion
  • neutrons

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