Neutron-source fidelity for laser-driven D--D lithium-blanket tritium-breeding tests
Abstract
Compact deuterium--deuterium (D--D) neutron sources can provide controllable irradiation fields for lithium-blanket studies, although their broad joint energy and angle distributions differ from the conventional ~MeV isotropic representation. We couple particle-in-cell (PIC) simulations of target-normal-sheath-accelerated deuterons with a thick-target He source model and Monte Carlo neutron transport. For natural lithium, the seven two-dimensional sources change tritium production per source neutron by to relative to the ideal source. The matched three-dimensional calculation gives an increase of and lowers the corresponding ratio from to . Source substitutions show that the difference is predominantly spectral, since the real spectrum alone gives a factor of , while using the real neutron emission directions in place of isotropic emission adds only a further factor of in the three-dimensional case. The real spectrum lowers the Li contribution by , but the accessible Li response exceeds this loss. Enrichment to Li keeps the total change within . In the matched three-dimensional converter and blanket calculation, direct T production is tritons per source neutron and accounts for and of the combined production for natural and enriched lithium, respectively. High-density polyethylene moderation raises tritium production by about one order of magnitude but first weakens and then reverses the increase in blanket tritium production. The analysis quantifies source-model effects in compact breeding tests.
Keywords
Cite
@article{arxiv.2607.13585,
title = {Neutron-source fidelity for laser-driven D--D lithium-blanket tritium-breeding tests},
author = {Chengqi-Zhang and Yang He and Mamat Ali Bake and Baisong-Xie},
journal= {arXiv preprint arXiv:2607.13585},
year = {2026}
}