Development and characterization of low-scattering vanadium nanoparticle targets for short-range interaction searches

We developed high-purity vanadium-based nanoparticle targets for neutron scattering experiments aimed at exploring gravity-like short-range new interactions in the submicron regime. Vanadium and V-Ni nanoparticles were fabricated using top-down and bottom-up methods and quantitatively characterized by SEM-EDS, ICP-AES, NDIR and SAXS. Through the performance tests, an RF thermal plasma method was found to be the best from viewpoints of the reproducibility, dispersion of the radius, and contamination of metallic elements. The oxygen incorporation during fabrication was quantified, and its impact on the effective coherent scattering length was evaluated, leading to a minimum average coherent scattering length of 0.719(23) fm, comparable to that of natural vanadium. These results demonstrate that vanadium-based nanoparticle targets with controlled composition and nanostructure can be systematically designed and fabricated to suppress nuclear scattering backgrounds, thereby enabling experimentally viable coherent neutron scattering measurements for short-range interaction searches.

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Publication Details

Journal
Nuclear Instruments and Methods in Physics Research Section B Beam Interactions with Materials and Atoms
Published
2026-10-05
DOI
https://doi.org/10.1016/j.nimb.2026.166329
Primary Topic
Nuclear Physics and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Development and characterization of low-scattering vanadium nanoparticle targets for short-range interaction searches

Yuki Yoshikawa, K. Mishima, Masaaki Kitaguchi, R. Nakabe et al.
Nuclear Instruments and Methods in Physics Research Section B Beam Interactions with Materials and Atoms
Nuclear Physics and Applications
article

Development and characterization of low-scattering vanadium nanoparticle targets for short-range interaction searches

Yuki Yoshikawa, K. Mishima, Masaaki Kitaguchi, R. Nakabe, Tatsushi Shima, Masayuki Hiromoto, Christopher C. Haddock, T. Yoshioka, K. Hirota, Hirohiko M. Shimizu, Ryota Kondo
article en

Abstract

We developed high-purity vanadium-based nanoparticle targets for neutron scattering experiments aimed at exploring gravity-like short-range new interactions in the submicron regime. Vanadium and V-Ni nanoparticles were fabricated using top-down and bottom-up methods and quantitatively characterized by SEM-EDS, ICP-AES, NDIR and SAXS. Through the performance tests, an RF thermal plasma method was found to be the best from viewpoints of the reproducibility, dispersion of the radius, and contamination of metallic elements. The oxygen incorporation during fabrication was quantified, and its impact on the effective coherent scattering length was evaluated, leading to a minimum average coherent scattering length of 0.719(23) fm, comparable to that of natural vanadium. These results demonstrate that vanadium-based nanoparticle targets with controlled composition and nanostructure can be systematically designed and fabricated to suppress nuclear scattering backgrounds, thereby enabling experimentally viable coherent neutron scattering measurements for short-range interaction searches.

Nuclear Instruments and Methods in Physics Research Section B Beam Interactions with Materials and AtomsVol. 581
Japan Atomic Energy Agency (JP), Obayashi (Japan) (JP), Kyushu University (JP), High Energy Accelerator Research Organization (JP), Fukuoka University (JP), Nagoya University (JP), The University of Osaka (JP)
Japan Society for the Promotion of Science
Openalex Percentile: Top 56%
Nuclear Physics and Applications
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