Sadhan Bijoy Deb
Bhabha Atomic Research Centre
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Featured researches published by Sadhan Bijoy Deb.
RSC Advances | 2016
Abhijit Saha; Sadhan Bijoy Deb; Arnab Sarkar; Manoj Kumar Saxena; B. S. Tomar
Uranium (U) and thorium (Th) are both chemically and radiologically toxic even at ultratrace concentrations. Hence, the development of new preconcentration procedures for their precise determination by simple, versatile and cost effective analytical techniques is desirable. A novel, simple and simultaneous cloud point extraction (CPE) procedure has been developed for preconcentrating trace amounts of U and Th in aqueous samples. Preconcentration of the metal ions in the surfactant rich phase of Triton X-114 was carried out by complexing them with trioctylphosphine oxide (TOPO) and N,N,N′,N′-tetraoctyldiglycolamide (TODGA). The preconcentrated solution was subjected to UV-visible spectrophotometry employing arsenazo-III. Partial least square regression analysis was then utilized to resolve their overlapping absorbance spectra and thereby allowing their determination in the presence of one another. The CPE procedure was optimized with respect to: pH of the solution, ionic strength, extraction temperature, phase separation temperature and concentrations of extractants, surfactant and co-surfactant. The developed CPE procedure resulted in percentage extraction efficiencies (EEs) of 98.0 ± 0.5 for U and 99.5 ± 0.5 for Th. Interference studies were also carried out and it was found that the recoveries of U and Th were 98% and 99% respectively in the absence of and ≥95% in the presence of interfering ions. The linear dynamic concentration ranges of the procedure were found to be 15–1000 ng mL−1 and 10–1000 ng mL−1 for U and Th, respectively. The developed methodology was successfully employed for the determination of U and Th in unspiked and spiked samples of ground water, lake water and sea water with ≤4% relative standard deviations. These samples were also directly analyzed by inductively coupled plasma mass spectrometry (ICP-MS) and the agreement between these two results at the 95% confidence level validates the developed methodology. The proposed CPE procedure can be used effectively for the simultaneous extraction of U and Th quantitatively with PFs of 94 for U and 100 for Th and can tolerate much higher levels of interfering ions.
Journal of Coordination Chemistry | 2010
Sadhan Bijoy Deb; S. Kannan; Michael G. B. Drew
A new tri-functional ligand iBu2NCOCH2SOCH2CONiBu2 was prepared and characterized. The coordination chemistry of this ligand with uranyl nitrate was studied with IR, 1H NMR, electrospray mass–spectrometry, thermogravimetry, and elemental analysis. The structure of [UO2(NO3)2(iBu2NCOCH2SOCH2CONiBu2)] was determined by single-crystal X-ray diffraction. The uranium(VI) ion is surrounded by eight oxygens in a hexagonal bipyramidal geometry. Four oxygens from two nitrates and two oxygens from the ligand form a planar hexagon. The ligand is a bidentate chelate, bonding through sulfoxo and one of the carbamoyl groups to uranyl nitrate.
Journal of Analytical Atomic Spectrometry | 2016
Abhijit Saha; Sadhan Bijoy Deb; Manoj Kumar Saxena
Binary and/or ternary metallic alloys of uranium (U) and plutonium (Pu) with transition metals are considered to be promising fuels for fast breeder reactors due to their high fissile atom content, high breeding ratio with lower doubling time, dimensional stability at high burn-up and high thermal conductivity, etc. Hence, the development of new and promising analytical methodologies for the characterization of trace impurities in advanced metallic fuels is always appreciated. In the present work, a number of trace impurities viz., B, Ce, Cd, Co, Eu, Dy, Gd, Mn, Nd, Ni, Sm and Tb in U–Ti, U–Zr and U–Mo alloys were determined by inductively coupled plasma mass spectrometry (ICP-MS). Solvent extraction using tributylphosphate (TBP) in carbon tetrachloride (CCl4) was used for the partial removal of matrix elements so as to reduce the matrix effect on these analytes during mass spectrometric analysis. The common analyte internal standard (CAIS) technique was refined and utilized to account for the effect of the remaining matrix elements. The proposed refined CAIS technique was validated by standard addition using synthetic samples and the analyte recoveries were found to be ≥92%. Real samples of U–Ti, U–Zr and U–Mo alloys were analyzed for trace elements and the relative standard deviations (RSDs) were found to be between 5 and 8%. Cross-validation of the proposed method was carried out by isotope dilution mass spectrometry (IDMS) and recovery studies employing gamma spectrometry. The method detection limit (MDL) lies in the range of 3–15 ng mL−1.
Analytical Chemistry | 2017
Abhijit Saha; Kaushik Sanyal; Neetika Rawat; Sadhan Bijoy Deb; Manoj Kumar Saxena; B. S. Tomar
A task specific ionic liquid (TSIL) bearing phosphoramidate group, viz., N-propyl(diphenylphosphoramidate)trimethylammonium bis(trifluoromethanesulfonyl)imide, was synthesized and characterized by 1H NMR, 13C NMR, 31P NMR, and IR spectroscopies, elemental (C H N S) analysis, and electrospray ionization mass spectrometry (ESI-MS). Using this TSIL a cloud point extraction (CPE) or micelle mediated extraction procedure was developed for preconcentration of uranium (U) in environmental aqueous samples. Total reflection X-ray fluorescence spectrometry was utilized to determine the concentration of U in the preconcentrated samples. In order to understand the mechanism of the CPE procedure, complexation study of the TSIL with U was carried out by isothermal calorimetric titration, liquid-liquid extraction, 31P NMR and IR spectroscopies, and ESI-MS. The developed analytical technique resulted in quantitative extraction efficiency of 99.0 ± 0.5% and a preconcentration factor of 99 for U. The linear dynamic range and method detection limit of the procedure were found to be 0.1-1000 ng mL-1 and 0.02 ng mL-1, respectively. The CPE procedure was found to tolerate a higher concentration of commonly available interfering cations and anions, especially the lanthanides. The developed analytical method was validated by determining the concentration of U in a certified reference material, viz., NIST SRM 1640a natural water, which was found to be in good agreement at a 95% confidence limit with the certified value. The method was successfully applied to the U determination in three natural water samples with ≤4% relative standard deviation (1σ).
Radiochimica Acta | 2018
Brijlesh Kumar Nagar; Khushboo Kumari; Sadhan Bijoy Deb; Manoj Kumar Saxena; B. S. Tomar
Abstract Dysprosium-titanate (Dy2TiO5), being highly refractory in nature, its dissolution using conventional (hot-plate and fusion) methods is very difficult. Hence, for quantitative dissolution, a microwave method has been developed. The instrumental parameters and amount of acids has been optimized. Studies have been carried out for precise and accurate estimation of major elements such as Dy, Ti, and Mo. An anion exchange column has been used to separate Mo, Dy and Ti. Analysis of these elements has been carried out using ICP-MS, UV-visible spectroscopy, and gravimetric methods. In the developed method, precipitation of molybdenum and dysprosium has been done using α-benzoine oxime, and oxalic acid respectively. These precipitates have been converted into their respective oxide form. The purities of these oxides (Dy2O3 and MoO3) have been determined using ICP-MS. The method has been validated using synthetic samples where it is found that accuracy of Dy and Mo is >99% and precision is <1 (%RSD). The titanium has been determined using UV-visible spectroscopy with accuracy >98% and precision <2 (%RSD).
Polyhedron | 2008
S. Kannan; Sadhan Bijoy Deb; J.S. Gamare; M.G.B. Drew
Polyhedron | 2009
Sadhan Bijoy Deb; J.S. Gamare; S. Kannan; M.G.B. Drew
Inorganica Chimica Acta | 2010
S. Kannan; Sadhan Bijoy Deb; Michael G. B. Drew
Spectrochimica Acta Part B: Atomic Spectroscopy | 2014
Abhijit Saha; Sadhan Bijoy Deb; B.K. Nagar; Manoj Kumar Saxena
Microchemical Journal | 2015
Abhijit Saha; D. Shah; Sadhan Bijoy Deb; Manoj Kumar Saxena; V.G. Mishra; B.K. Nagar; B. S. Tomar