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Scalable Production of Lead-212 and Actinium-225 Generators with Fusion Neutrons

J. F. Parisi, A. Rutkowski

physics.plasm-pharXiv:2609.19166

Abstract

Targeted alpha therapy will require a large expansion of 212Pb and 225Ac production. We propose neutron- and photon-driven routes that convert 230Th, 231Pa, 232Th, and 237Np into generator parents 228Th and 229Th. The most direct 225Ac route is 230Th(n,2n)229Th. A 10 MW deuterium-tritium (D-T) neutron source irradiating thorium with a 27% 230Th isotopic fraction accumulates about 250 Ci of 229Th in six months, initially enough for five million 225Ac dose-equivalents per year, and its 7916 yr half-life makes it useful for millennia. This requires only 2 gigawatt-days of D-T fusion operations. Thermal-neutron irradiation of tens of grams of 230Th produces gram quantities of 232U, a decades-long source of 228Th for millions of 212Pb dose-equivalents per year. Alternate routes proceed through 231Pa: fusion neutrons produce 1 to 2 tonnes of 231Pa per gigawatt-year from 232Th, and a thermal reactor converts up to 0.4 g of 232U per gram of 231Pa. Each gram of stored 232U produces 10 mg (8.2 Ci) of 228Th per year. Subsequent 228Th(n,γ)229Th converts 0.07 to 0.34 g of 229Th per gram of 228Th. We also analyze the 237Np(n,2n)236mNp route to 228Th. These pathways scale from kilowatt to megawatt D-T sources and could secure millions of 212Pb and 225Ac dose-equivalents per year.

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