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In Situ Dielectric Barrier Discharge Trap for Ultrasensitive Arsenic Determination by Atomic Fluorescence Spectrometry.
Qi, Yuehan; Mao, Xuefei; Liu, Jixin; Na, Xing; Chen, Guoying; Liu, Meitong; Zheng, Chuangmu; Qian, Yongzhong.
Afiliación
  • Qi Y; Institute of Quality Standard and Testing Technology for Agro-Products , Chinese Academy of Agricultural Sciences and Key Laboratory of Agro-Food Safety and Quality, Ministry of Agriculture , Beijing 100081 , China.
  • Mao X; Institute of Quality Standard and Testing Technology for Agro-Products , Chinese Academy of Agricultural Sciences and Key Laboratory of Agro-Food Safety and Quality, Ministry of Agriculture , Beijing 100081 , China.
  • Liu J; Institute of Quality Standard and Testing Technology for Agro-Products , Chinese Academy of Agricultural Sciences and Key Laboratory of Agro-Food Safety and Quality, Ministry of Agriculture , Beijing 100081 , China.
  • Na X; Institute of Quality Standard and Testing Technology for Agro-Products , Chinese Academy of Agricultural Sciences and Key Laboratory of Agro-Food Safety and Quality, Ministry of Agriculture , Beijing 100081 , China.
  • Chen G; Beijing Ability Technique Company, Limited , Beijing 100081 , China.
  • Liu M; U.S. Department of Agriculture , Agricultural Research Service, Eastern Regional Research Center , 600 East Mermaid Lane , Wyndmoor , Pennsylvania 19038 , United States.
  • Zheng C; Institute of Quality Standard and Testing Technology for Agro-Products , Chinese Academy of Agricultural Sciences and Key Laboratory of Agro-Food Safety and Quality, Ministry of Agriculture , Beijing 100081 , China.
  • Qian Y; College of Chemistry , Jilin University , Changchun 130012 , China.
Anal Chem ; 90(10): 6332-6338, 2018 05 15.
Article en En | MEDLINE | ID: mdl-29688699
ABSTRACT
The mechanisms of arsenic gas phase enrichment (GPE) by dielectric barrier discharge (DBD) was investigated via X-ray photoelectron spectroscopy (XPS), in situ fiber optic spectrometer (FOS), etc. It proved for the first time that the arsenic species during DBD trapping, release, and transportation to the atomic fluorescence spectrometer (AFS) are probably oxides, free atoms, and atom clusters, respectively. Accordingly, a novel in situ DBD trap as a GPE approach was redesigned using three-concentric quartz tube design and a modified gas line system. After trapping by O2 at 9.2 kV, sweeping for 180 s, and releasing by H2 at 9.5 kV, 2.8 pg detection limit (LOD) was achieved without extra preconcentration (sampling volume = 2 mL) as well as 4-fold enhancement in absolute sensitivity and ∼10 s sampling time. The linearity reached R2 > 0.998 in the 0.1-8 µg/L range. The mean spiked recoveries for tap, river, lake, and seawater samples were 100-106%; and the measurements of the certified reference materials (CRMs) were in good agreement with the certified values. In situ DBD trap is also suitable to atomic absorption spectrometry (AAS) or optical emission spectrometry (OES) for fast and on-site determination of multielements.
Asunto(s)

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Arsénico / Espectrofotometría Atómica Idioma: En Revista: Anal Chem Año: 2018 Tipo del documento: Article País de afiliación: China

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Arsénico / Espectrofotometría Atómica Idioma: En Revista: Anal Chem Año: 2018 Tipo del documento: Article País de afiliación: China