On the use of certified reference materials for assuring the quality of results for the determination of mercury in environmental samples.

Environ Sci Pollut Res Int

Faculty of Chemistry, Biological and Chemical Research Centre, University of Warsaw, Żwirki i Wigury 101, 02-089, Warsaw, Poland.

Published: March 2017

This work focused on the development and validation of methodologies for the accurate determination of mercury in environmental samples and its further application for the preparation and certification of new reference materials (RMs). Two certified RMs ERM-CC580 (inorganic matrix) and ERM-CE464 (organic matrix) were used for the evaluation of digestion conditions assuring the quantitative recovery of mercury. These conditions were then used for the digestion of new candidates for the environmental RMs: bottom sediment (M_2 BotSed), herring tissue (M_3 HerTis), cormorant tissue (M_4 CormTis), and codfish muscle (M_5 CodTis). Cold vapor atomic absorption spectrometry (CV AAS) and inductively coupled plasma mass spectrometry (ICP MS) were used for the measurement of mercury concentration in all RMs. In order to validate and assure the accuracy of results, isotope dilution mass spectrometry (IDMS) was applied as a primary method of measurement, assuring the traceability of obtained values to the SI units: the mole, the kilogram, and the second. Results obtained by IDMS using n(Hg)/n(Hg) ratio, with estimated combined uncertainty, were as follows: (916 ± 41)/[4.5 %] ng g (M_2 BotSed), (236 ± 14)/[5.9 %] ng g (M_3 HerTis), (2252 ± 54)/[2.4 %] ng g (M_4 CormTis), and (303 ± 15)/[4.9 %] ng g (M_CodTis), respectively. Different types of detection techniques and quantification (external calibration, standard addition, isotope dilution) were applied in order to improve the quality of the analytical results. The good agreement (within less than 2.5 %) between obtained results and those derived from the Inter-laboratory Comparison, executed by the Institute of Nuclear Chemistry and Technology (Warsaw, Poland) on the same sample matrices, further validated the analytical procedures developed in this study, as well as the concentration of mercury in all four new RMs. Although the developed protocol enabling the metrological certification of the reference value was exemplified by the determination of mercury in environmental samples, it could be considered as valid for any certification procedure required whenever new certified RMs are introduced.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5384953PMC
http://dx.doi.org/10.1007/s11356-016-7262-4DOI Listing

Publication Analysis

Top Keywords

determination mercury
12
mercury environmental
12
environmental samples
12
reference materials
8
certification reference
8
certified rms
8
m_2 botsed
8
m_3 hertis
8
m_4 cormtis
8
mass spectrometry
8

Similar Publications

Heavy metal pollution is a major environmental and health problem due to the toxicity and persistence of metals such as lead, mercury, cadmium, and arsenic in water, soil, and air. Advances in sensor technology have significantly improved the detection and quantification of heavy metals, providing real-time monitoring and mitigation tools. This review explores recent developments in heavy metal detection, focusing on innovative uses of immobilized chromogenic reagents, nanomaterials, perovskites, and nanozymes.

View Article and Find Full Text PDF

Background: Elevated iron in brain is a source of free radicals that causes oxidative stress which has been linked to neuropathologies and cognitive impairment among older adults. The aim of this study was to investigate the association of iron levels with transverse relaxation rate, R, and white matter hyperintensities (WMH), independent of the effects of other metals and age-related neuropathologies.

Method: Cerebral hemispheres from 437 older adults participating in the Rush Memory and Aging Project study (Table 1) were imaged ex-vivo using 3T MRI scanners.

View Article and Find Full Text PDF

Novel Insights into Hg Oxidation in Rice Leaf: Catalase Functions and Transcriptome Responses.

Environ Sci Technol

January 2025

State Key Laboratory of Environmental Geochemistry, Institute of Geochemistry, Chinese Academy of Sciences, Guiyang 550082, P. R. China.

Rice leaves can assimilate atmospheric mercury (Hg), which is accumulated by grains and causes health risks to rice consumers. However, the molecular mechanisms underlying Hg assimilation in rice leaves remain poorly understood. Here, we investigated catalase's (CAT) function in Hg oxidation within rice leaves, as well as the Hg speciation and transcriptomic profiles of rice leaves exposed to Hg.

View Article and Find Full Text PDF

Background: Cerebrovascular accidents are known as a great cause of morbidity and mortality worldwide. Although there are known risk factors for ischemic stroke, the cases that cannot be justified with these risk factors are increasing. Toxic metals as a potential risk factor for other diseases in humans are assessed in this study in the CVA group and compared to controls.

View Article and Find Full Text PDF

Sources analysis and risk assessment of heavy metals in soil in a polymetallic mining area in southeastern Hubei based on Monte Carlo simulation.

Ecotoxicol Environ Saf

December 2024

Chinese Academy of Geological Sciences, China Geology Survey, Ministry of Natural Resources, Beijing 100037, China.

This study investigates the pollution characteristics, spatial patterns, causes, and ecological risks of heavy metals in the soils of the southeastern Hubei polymetallic mining areas, specifically the Jilongshan (JLS) and Tonglushan (TLS) regions, located in the middle and lower reaches of the Yangtze River. The main findings are as follows: (1) Among the heavy metals present in the soil, copper (Cu) has the highest average concentration at 278.54 mg/kg, followed by zinc (Zn) at 161.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!