Design Improvements of a High‐Efficiency Cavity Ion Source for Enhanced Uranium Sensitivity and Mass Fractionation Studies Using TIMS

RATIONALE: Thermal ionization mass spectrometry (TIMS) integrated with a high-efficiency cavity ion source (CIS) has emerged as a promising analytical tool for precise isotope ratio measurements and trace elemental analysis in nuclear science. Operation with high ionization potential (HIP) elements such as uranium requires higher cavity temperatures and emission currents. This caused glow discharge, thermal instability, localized overheating, and degradation of ion beam stability during prolonged operation. This necessitates a detailed approach for further enhancement of source performance and operational stability. METHODS: The CIS was systematically redesigned for HIP elements through detailed engineering optimization of the cavity geometry, thermionic filament dimension, ion extraction configuration, and shielding electrode design to achieve stable ion beam generation. The optimized CIS assembly was then integrated with indigenous magnetic sector TIMS platform. After that, its analytical performance was systematically evaluated relative to a conventional thermal ionization source (TIS) configuration operated under same experimental conditions. Comparative measurement was carried out in terms of analytical sensitivity (the total detected ion signal per unit sample loading). Also, the time-dependent instrumental mass fractionation behavior and long-term ion beam stability study were carried out. RESULTS: The design improvements and systematic optimization of the CIS showed nearly an order of magnitude increase in analytical sensitivity for uranium together with a ~1%-2% improvement in mass fractionation stability relative to the conventional TIS configuration. CONCLUSIONS: The design improvements carried out in the CIS configuration resulted in higher analytical sensitivity and better resistance to systematic isotopic drift during uranium measurements. This established the CIS TIMS platform as an effective and high-performance analytical tool. It useful for precise actinide isotope ratio measurements relevant to nuclear safeguards, nuclear forensics, and trace isotopic analysis.

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Journal
Rapid Communications in Mass Spectrometry
Published
2026-09-30
DOI
https://doi.org/10.1002/rcm.70184
Primary Topic
Radioactive contamination and transfer
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article
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article

Design Improvements of a High‐Efficiency Cavity Ion Source for Enhanced Uranium Sensitivity and Mass Fractionation Studies Using TIMS

Rabi Datta, R.K. Bhatia, E. Ravisankar, R. D. Phulsundar et al.
Rapid Communications in Mass Spectrometry
Radioactive contamination and transfer
article

Design Improvements of a High‐Efficiency Cavity Ion Source for Enhanced Uranium Sensitivity and Mass Fractionation Studies Using TIMS

Rabi Datta, R.K. Bhatia, E. Ravisankar, R. D. Phulsundar, M. M. Gulhane, K. G. Bhushan, Varun Kant Yadav, A. Singh
article en

Abstract

RATIONALE: Thermal ionization mass spectrometry (TIMS) integrated with a high-efficiency cavity ion source (CIS) has emerged as a promising analytical tool for precise isotope ratio measurements and trace elemental analysis in nuclear science. Operation with high ionization potential (HIP) elements such as uranium requires higher cavity temperatures and emission currents. This caused glow discharge, thermal instability, localized overheating, and degradation of ion beam stability during prolonged operation. This necessitates a detailed approach for further enhancement of source performance and operational stability. METHODS: The CIS was systematically redesigned for HIP elements through detailed engineering optimization of the cavity geometry, thermionic filament dimension, ion extraction configuration, and shielding electrode design to achieve stable ion beam generation. The optimized CIS assembly was then integrated with indigenous magnetic sector TIMS platform. After that, its analytical performance was systematically evaluated relative to a conventional thermal ionization source (TIS) configuration operated under same experimental conditions. Comparative measurement was carried out in terms of analytical sensitivity (the total detected ion signal per unit sample loading). Also, the time-dependent instrumental mass fractionation behavior and long-term ion beam stability study were carried out. RESULTS: The design improvements and systematic optimization of the CIS showed nearly an order of magnitude increase in analytical sensitivity for uranium together with a ~1%-2% improvement in mass fractionation stability relative to the conventional TIS configuration. CONCLUSIONS: The design improvements carried out in the CIS configuration resulted in higher analytical sensitivity and better resistance to systematic isotopic drift during uranium measurements. This established the CIS TIMS platform as an effective and high-performance analytical tool. It useful for precise actinide isotope ratio measurements relevant to nuclear safeguards, nuclear forensics, and trace isotopic analysis.

Rapid Communications in Mass SpectrometryVol. 40(24)
Bhabha Atomic Research Centre (IN), Homi Bhabha National Institute (IN)
Openalex Percentile: Top 15%
Radioactive contamination and transfer
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