Determination of lanthanide and actinide elements by energy dispersive x-ray fluorescence spectrometry applying DLLME preconcentration and dried spot

被引:7
|
作者
Sa, Ivero P. [1 ,2 ]
Almeida, Ohana N. [1 ]
Lima, Daniel De C. [1 ,3 ]
da Silva, Erik G. P. [1 ,3 ]
Santos, Luana N. [1 ]
Luzardo, Francisco H. M. [1 ]
Velasco, Fermin G. [1 ]
Gonzalez, Mario H. [4 ]
Amorim, Fabio A. C. [1 ,3 ]
机构
[1] State Univ Santa Cruz UESC, Dept Exact & Technol Sci, Jorge Amado Highway Km 16, BR-45662900 Ilheus, BA, Brazil
[2] Univ Fed Sao Carlos, Dept Chem, Grp Appl Instrumental Anal, BR-13560270 Sao Carlos, SP, Brazil
[3] Univ Fed Bahia, Natl Inst Energy & Environm Sci & Technol, BR-40170115 Salvador, BA, Brazil
[4] Paulista State Univ UNESP, Dept Chem & Environm Sci, IBILICE, POB 136, BR-15054000 Sao Jose Do Rio Preto, SP, Brazil
关键词
X-ray fluorescence spectrometry; Actinides; Lanthanides; Liquid phase microextraction; Dried spot; Multivariate optimization; Water analysis; RARE-EARTH-ELEMENTS; PLASMA-MASS SPECTROMETRY; LIQUID-LIQUID MICROEXTRACTION; ORGANIC DROP MICROEXTRACTION; HEAVY-METAL IONS; ULTRATRACE DETERMINATION; ANALYTICAL-CHEMISTRY; MATRIX ELIMINATION; WATER SAMPLES; ICP-MS;
D O I
10.1016/j.sab.2021.106253
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
This work describes an analytical procedure to determination of trace amount of lanthanide and actinide chemistry elements (LAEs) in water samples by energy dispersive x-ray fluorescence spectrometry (EDXRF) with the prepare of the samples using simultaneous preconcentration procedure based on the dispersive liquid-liquid microextraction (DLLME). Critical study of the analytical procedure occurred the following way: ions of Eu, Er, Ho, Th, U and Yb presents in 5.0 mL of aqueous sample have been complexed with 2-(5-bromo-2-pyridylazo)-5(diethylamino)-phenol (Br-PADAP) in a mixture contained solvents (disperser and extractant). After centrifugation, 30 mu L of the sedimented organic phase has been removed and deposited on membrane disk and submitted to EDXRF analysis. The optimization step was performed by: i) screening factor with mixture design for the disperser solvent (acetone, acetonitrile and ethanol) and extractant solvent (carbon tetrachloride, trichlorethylene and 1,2-dichloroethane); ii) Box-Behnken design for the independents variables: pH, Br-PADAP concentration, volume of disperser solvent and volume of extractant solvent. The optimized conditions were: 500 mu L of disperser solvent (ethanol), 60 mu L extractant solvent (carbon tetrachloride and trichlorethylene, 1: 1 ratio), BrPADAP 1.8 x 10-5 mol L-1 and pH 8.0. In these conditions, the procedure allows the determination of Eu, Ho, Er, Yb, Th and U with quantification limits of 10.5; 8.6; 4.3; 7.0; 6.6 and 1.1 mu g L-1, respectively; preconcentration factor between 18 and 74, and precision (RSD%) below that 6%. Salting out effect, presence of other ions, and additions/recoveries of analytes in real samples was verified and the recovery values were between of 90 to 107%. Analytical method has been applied in waters samples and groundwater from uranium mining region.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Determination of elemental composition of Lake Baikal sponges by wavelength dispersive X-ray fluorescence spectrometry
    Chuparina, E. V.
    Paradina, L. Ph.
    Trunova, V. A.
    X-RAY SPECTROMETRY, 2013, 42 (05) : 388 - 393
  • [22] Determination of lanthanides by source excited energy dispersive X-ray fluorescence (EDXRF) method after preconcentration with ammonium pyrrolidine dithiocarbamate (APDC)
    Orescanin, Visnja
    Mikelic, Luka
    Roje, Vibor
    Lulic, Stipe
    ANALYTICA CHIMICA ACTA, 2006, 570 (02) : 277 - 282
  • [23] Energy-Dispersive X-ray Fluorescence Spectrometry: A Long Overdue Addition to the Chemistry Curriculum
    Palmer, Peter T.
    JOURNAL OF CHEMICAL EDUCATION, 2011, 88 (07) : 868 - 872
  • [24] Bromine and iodine in Japanese soils determined with polarizing energy dispersive X-ray fluorescence spectrometry
    Yamasaki, Shin-ichi
    Takeda, Akira
    Watanabe, Takahiro
    Tagami, Keiko
    Uchida, Shigeo
    Takata, Hyoe
    Maejima, Yuji
    Kihou, Nobuharu
    Tsuchiya, Noriyoshi
    SOIL SCIENCE AND PLANT NUTRITION, 2015, 61 (05) : 751 - 760
  • [25] Opportunities and challenges of applying advanced X-ray spectroscopy to actinide and lanthanide N-donor ligand systems
    Pruessmann, Tim
    Nagel, Peter
    Simonelli, Laura
    Batchelor, David
    Gordon, Robert
    Schimmelpfennig, Bernd
    Trumm, Michael
    Vitova, Tonya
    JOURNAL OF SYNCHROTRON RADIATION, 2022, 29 : 53 - 66
  • [26] Determination of Major Elements in Soil from Cancer Village by X-ray Fluorescence Spectrometry
    Wei Zhen-lin
    Li He
    Rui Yu-kui
    SPECTROSCOPY AND SPECTRAL ANALYSIS, 2008, 28 (11) : 2706 - 2707
  • [27] Determination of rare earth elements in combustion ashes from selected Polish coal mines by wavelength dispersive X-ray fluorescence spectrometry
    Smolinski, Adam
    Stempin, Marek
    Howaniec, Natalia
    SPECTROCHIMICA ACTA PART B-ATOMIC SPECTROSCOPY, 2016, 116 : 63 - 74
  • [28] Determination of uranium in water samples by energy-dispersive X-ray fluorescence spectrometry after solid-phase extraction
    Carvalho, Roberta N. C. S.
    Anunciacao, Taiana A.
    Dantas, Alailson F.
    Dias, Fabio de S.
    Teixeira, Leonardo S. G.
    JOURNAL OF THE IRANIAN CHEMICAL SOCIETY, 2024, 21 (10) : 2635 - 2642
  • [29] Determination of inorganic nutrients in wheat flour by laser-induced breakdown spectroscopy and energy dispersive X-ray fluorescence spectrometry
    Peruchi, Lidiane Cristina
    Nunes, Lidiane Cristina
    Arantes de Carvalho, Gabriel Gustinelli
    Bueno Guerra, Marcelo Braga
    de Almeida, Eduardo
    Rufini, Iolanda Aparecida
    Santos, Dario, Jr.
    Krug, Francisco Jose
    SPECTROCHIMICA ACTA PART B-ATOMIC SPECTROSCOPY, 2014, 100 : 129 - 136