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Thin film hydride generation: determination of ultra-trace copper by flow injection in situ hydride trapping graphite furnace AAS
Author(s) -
Chengbin Zheng,
Ralph E. Sturgeon,
Xiandeng Hou
Publication year - 2010
Publication title -
journal of analytical atomic spectrometry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.899
H-Index - 113
eISSN - 1364-5544
pISSN - 0267-9477
DOI - 10.1039/c002360d
Subject(s) - hydride , copper , graphite , separator (oil production) , chemistry , detection limit , analytical chemistry (journal) , analyte , formic acid , nitric acid , certified reference materials , chromatography , inorganic chemistry , hydrogen , physics , organic chemistry , thermodynamics
A novel system which significantly enhances copper hydride generation efficiency was used for the determination of trace copper by coupling a flow injection system to a graphite furnace for in situ collection of the analyte and subsequent AAS detection. A single device integrated the functions of hydride generator and gas liquid separator. Solutions of the sample containing 0.0005% (m/v) phenanthroline and 1% formic acid were merged with tetrahydroborate reductant to yield a thin film wetting a reaction surface from which product vapor was efficiently liberated and transported to the heated furnace. Optimum operating conditions provided for a generation/transport/collection efficiency of 8\u201312%. Interferences from common transition and noble metals were effectively eliminated. A limit of detection of 100 pg ml\u22121 was obtained based on processing a 1 ml sample volume. A precision of better than 4% (RSD) at 1 ng ml\u22121 was typical. The methodology was successfully applied to the determination of Cu in several NRCC natural water and biological tissue Certified Reference MaterialsPeer reviewed: YesNRC publication: Ye

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