Path to Increasing p-B11 Reactivity via ps and ns Lasers

Author:

Mehlhorn Thomas A.12ORCID,Labun Lance3ORCID,Hegelich Bjorn Manuel3ORCID,Margarone Daniele45ORCID,Gu Ming Feng6ORCID,Batani Dimitri27ORCID,Campbell E. Michael8,Hu S. X.9ORCID

Affiliation:

1. Mehlhorn Engineering Consulting Services, Beaverton 97003, OR, USA

2. HB11 Energy Holdings Pty, 11 Wyndora Ave, Freshwater 2096, NSW, Australia

3. Department of Physics, University of Texas, Austin 78712, TX, USA

4. Centre for Plasma Physics, Queen’s University of Belfast, Belfast BT7 1NN, UK

5. ELI Beamlines Facility, The Extreme Light Infrastructure ERIC, Dolni Brezany 252 41, Czech Republic

6. Prism Computational Sciences, Madison, Wisconsin, USA

7. University of Bordeaux, CNRS, CEA, CELIA (Centre Lasers Intenses et Applications), Talence F-33405, France

8. MCM Consulting, San Diego 97127, CA, USA

9. Laboratory for Laser Energetics, University of Rochester, Rochester 14623, New York, USA

Abstract

The Lawson criterion for proton-boron (p-11B) thermonuclear fusion is substantially higher than that for deuterium-tritium (DT) because the fusion cross section is lower and peaks at higher ion energies. The Maxwellian averaged p-11B reactivity peaks at several hundred keV, where bremsstrahlung radiation emission may dominate over fusion reactions if electrons and ions are in thermal equilibrium and the losses are unrestricted. Nonequilibrium burn has often been suggested to realize the benefits of this aneutronic reaction, but the predominance of elastic scattering over fusion reactivity makes this difficult to achieve. The development of ultrashort pulse lasers (USPL) has opened new possibilities for initiating nonequilibrium thermonuclear burns and significant numbers of p-11B alpha particles have been reported from several experiments. We present an analysis that shows that these significant alpha yields are the result of beam fusion reactions that do not scale to net energy gain. We further find that the yields can be explained by experimental parameters and recently updated cross sections such that a postulated avalanche mechanism is not required. We use this analysis to understand the underlying physics of USPL-driven nonequilibrium fusion reactions and whether they can be used to initiate fusion burns. We conclude by outlining a path to increasing the p-11B reactivity towards the goal of achieving ignition and describing the design principles that we will use to develop a computational point design.

Funder

Ministry of Education, Youth, and Sports of the Czech Republic

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,Condensed Matter Physics,Atomic and Molecular Physics, and Optics

Reference56 articles.

1. Burning plasma achieved in inertial fusion

2. Nuclear-fusion reactor smashes energy record

3. Progress toward ITER’s First Plasma

4. Basic Research Needs Workshop on Inertial Fusion Energy;events bizzabo,2022

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