Interference Effects of Coexisting Ions on the Determination of Uranium in Aqueous Solutions Using Laser-Induced Fluorescence
Abstract
Accurate determination of trace uranium in aqueous systems is essential for reliable spectroscopic analysis, yet laser-induced fluorescence (LIF) measurements of uranyl ions are often affected by matrix interference. In this study, the effects of common coexisting ions (Fe³⁺, Al³⁺, Mg²⁺, SO₄²⁻, and NO3⁻) on uranyl fluorescence signals were systematically investigated. Using a controlled variable approach, mixed solutions that contained fixed uranium concentrations (1 and 20 ng/mL) and varying concentrations of interfering ions (1–100 μg/mL) were analyzed with a WGJ-III microuranium analyzer. The results demonstrate that different ions exhibit distinct interference behaviors that lead to fluorescence quenching or signal modulation depending on the ion type and concentration. The observed effects are discussed in terms of possible spectroscopic and chemical interaction mechanisms that influence uranyl fluorescence. This work provides a quantitative assessment of matrix interference in LIF-based uranium determination and offers useful insights for improving analytical accuracy in spectroscopic uranium analysis.
About the Authors
Yonggang HuoChina
Xi’an
Yurui Shao
China
Xi’an
Shiyong Yue
China
Luzhou
Miao Yang
China
Xi’an
Zhiqiang Sun
China
Xi’an
Jiongyao Li
China
Xi’an
Longfang Yang
China
Xi’an
Yifei Ren
China
Xi’an
Sufen Li
China
Xi’an
Xingfu Cai
Russian Federation
Xi’an
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Review
For citations:
Huo Y., Shao Yu., Yue Sh., Yang M., Sun Zh., Li J., Yang L., Ren Y., Li S., Cai X. Interference Effects of Coexisting Ions on the Determination of Uranium in Aqueous Solutions Using Laser-Induced Fluorescence. Zhurnal Prikladnoii Spektroskopii. 2026;93(5):721.
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