Ion irradiation is widely used to emulate neutron-induced damage and transmutation effects in fusion reactor materials. Heavy ions generate displacement damage over a micrometer-scale depth range preceding their implantation peak, where the damage level remains relatively uniform. Light ions such as helium and hydrogen are introduced to simulate gas production originating from (n,α) and (n,p) nuclear reactions. Accurate emulation of fusion conditions therefore requires a homogeneous distribution of light ions throughout the uniform portion of the damage region created by heavy ions. However, the inherently narrow implantation range of light ions, typically limited to a few hundred nanometers, makes achieving uniform gas concentrations across the full micrometer-scale damaged volume challenging. In this work, we report the development of two experimental techniques at the DiFU dual-beam facility designed to improve irradiation efficiency: (i) an oscillating aluminum energy degrader that broadens the light-ion implantation profile over approximately one micrometer while maintaining depth homogeneity, and (ii) an electrostatic beam scanning dose gradient system that enables multiple implantation doses on a single specimen in a single irradiation run. For the validation case, helium ions were implanted into Eurofer97 steel using the energy degrader and validated by transmission electron microscopy (TEM) after in situ heating, revealing a helium bubble distribution consistent with the predicted broadened implantation range. Lithium implantation was used as a surrogate to validate the dose gradient concept by time-of-flight secondary ion mass spectrometry (ToF-SIMS), confirming a linear dose ratio across the irradiated surface. The use of an oscillating energy degrader and dose gradients significantly enhances experimental efficiency and reproducibility for fusion materials irradiation studies.
Matić et al. (Thu,) studied this question.