Uncertainty minimization in electronic stopping cross-section measurements using the backscattering method

Fuente: arXiv
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Bibliographic Details
Main Authors: Pires, Victor, Silva, Arilson, Rodrigues, Cleber L., Added, Nemitala, Tabacniks, Manfredo H., Silva, Tiago F., Matias, Flávio, Yoriyaz, Helio, Shorto, Julian
Format: Preprint
Published: 2025
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_version_ 1866908600300994560
author Pires, Victor
Silva, Arilson
Rodrigues, Cleber L.
Added, Nemitala
Tabacniks, Manfredo H.
Silva, Tiago F.
Matias, Flávio
Yoriyaz, Helio
Shorto, Julian
author_facet Pires, Victor
Silva, Arilson
Rodrigues, Cleber L.
Added, Nemitala
Tabacniks, Manfredo H.
Silva, Tiago F.
Matias, Flávio
Yoriyaz, Helio
Shorto, Julian
contents Accurate determination of electronic stopping cross sections is critical for ion beam analysis and related applications. While transmission methods are well established, backscattering approaches remain less explored from a metrological perspective, often lacking a systematic treatment of uncertainties. In this work, we present a quantitative framework to optimize experimental geometry in backscattering-based stopping measurements, explicitly accounting for both statistical and systematic errors. Applying the method to helium ions in gold thin films, we identify angular conditions that balance precision and accuracy, achieving total uncertainties below 3\% over a wide energy range. The results, benchmarked against SRIM and ICRU-49, demonstrate that our approach improves the reliability of RBS-derived stopping data and strengthens their use for reference purposes and model validation.
format Preprint
id arxiv_https___arxiv_org_abs_2504_15106
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Uncertainty minimization in electronic stopping cross-section measurements using the backscattering method
Pires, Victor
Silva, Arilson
Rodrigues, Cleber L.
Added, Nemitala
Tabacniks, Manfredo H.
Silva, Tiago F.
Matias, Flávio
Yoriyaz, Helio
Shorto, Julian
Instrumentation and Detectors
Other Condensed Matter
Nuclear Experiment
Accurate determination of electronic stopping cross sections is critical for ion beam analysis and related applications. While transmission methods are well established, backscattering approaches remain less explored from a metrological perspective, often lacking a systematic treatment of uncertainties. In this work, we present a quantitative framework to optimize experimental geometry in backscattering-based stopping measurements, explicitly accounting for both statistical and systematic errors. Applying the method to helium ions in gold thin films, we identify angular conditions that balance precision and accuracy, achieving total uncertainties below 3\% over a wide energy range. The results, benchmarked against SRIM and ICRU-49, demonstrate that our approach improves the reliability of RBS-derived stopping data and strengthens their use for reference purposes and model validation.
title Uncertainty minimization in electronic stopping cross-section measurements using the backscattering method
topic Instrumentation and Detectors
Other Condensed Matter
Nuclear Experiment
url https://arxiv.org/abs/2504.15106