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April 30, 2026Nuclear Instruments and Methods in Physics Research Section A Accelerators Spectrometers Detectors and Associated Equipment0 citationsOpen Access

Combustion-Assisted Ink-Jet Printing of Nuclear Targets

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NCNoah CabanasUniversity of Notre DameVWVictor WilliamsUniversity of Notre DameKBKonstantin BauerUniversity of Notre Dame

Key Points

  • This work aims to enhance the target fabrication process for high-precision measurements in nuclear physics through advanced ink-jet printing techniques.
  • Used ink-jet deposition with combustible solutions to fabricate CeO2 and ThO2 targets.
  • Characterized the targets using scanning electron microscopy and alpha-particle spectroscopy.
  • Explored varying step sizes (50 μm and 150 μm) to assess effects on target uniformity and thickness.
  • 50 μm step size produced thick targets with a density of 350 μg/cm² but resulted in a cracked surface.
  • 150 μm spacing yielded thinner targets (20 μg/cm²) with excellent surface coverage and uniformity.
  • Highlighted the importance of droplet spacing in achieving desired target characteristics.

Abstract

Advances in target fabrication are critical to high-precision measurements in nuclear physics. This work details the preparation of patterned CeO 2 and ThO 2 architectures and thin-film targets via ink-jet deposition of combustible solutions . The produced targets were characterized by scanning electron microscopy (SEM) for radioactive targets, and by alpha-particle spectroscopy to determine densities. Ink jet printing of the targets, used both ethanol and 2-methoxyethanol as solvents, with cerium or thorium nitrate as the oxidizer and acetylacetone as the fuel. Additionally, we found that the distance between each droplet dispersion (step size) played the most significant role in determining the final pattern uniformity and thickness. A 50 μm step size leads to relatively thick targets with a density of 350 μg/cm 2 . Significant overlap in droplet sizes leads to a heterogeneous target with an undesirable cracked surface structure. In contrast, 150 μm spacing yields thinner (20 μg/cm 2 ) patterned structures with excellent surface coverage. This method of Ink-jet printing provides a straightforward, scalable, and high-efficiency pathway to prepare custom made, high-quality targets for nuclear physics experiments.

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Cite This Study

Cabanas et al. (2026) studied this question.

synapsesocial.com/papers/69f2f1471e5f7920c6386fd7https://doi.org/10.1016/j.nima.2026.171609
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