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DOE OSTI · 3506068

Forensic characterization of surrogate nuclear explosion debris: radiochemical and spectroscopic strategies for method validation

Abstract

Surrogate nuclear explosion debris (SNED) has emerged as a critical platform for advancing post-detonation nuclear forensic analysis in the absence of readily accessible historic materials. SNED enables controlled investigation and validation of analytical methodologies used to interrogate the chemical, isotopic, radiological, and microstructural signatures preserved in nuclear explosion debris. This review presents an integrated assessment of destructive and non-destructive analytical techniques commonly employed within decision-driven nuclear forensic workflows. Each technique is discussed individually while highlighting how it contributes to different stages of post-detonation analysis. Core methods – including gamma and alpha spectrometry, ICP-MS, TIMS, SIMS, SEM-EDS, XRF, LIBS, vibrational spectroscopy, and X-ray absorption spectroscopy – are critically evaluated with respect to forensic maturity, information content, and matrix limitations. Emphasis is placed on the role of SNED in benchmarking multi-modal workflows and identifying gaps in reproducing heterogeneity, fractionation, and radiation-driven evolution relevant to forensic attribution.

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Burns, Austin [University of Central Florida, Orlando, FL (United States)] (ORCID:0009000380302382), Anagnostopoulos, Vasileios [University of Central Florida, Orlando, FL (United States)] (ORCID:0000000256356722). 2026-07-24. Forensic characterization of surrogate nuclear explosion debris: radiochemical and spectroscopic strategies for method validation. https://doi.org/10.1515/ract-2026-0017

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