• NUCLEAR TECHNIQUES
  • Vol. 47, Issue 2, 020603 (2024)
Yujie FU1、2, Tao YU1、2、*, and Jianhua YE1、2
Author Affiliations
  • 1State Key Laboratory of Nuclear Resources and Environment, East China University of Technology, Nanchang 330013, China
  • 2School of Nuclear Science and Engineering, East China University of Technology, Nanchang 330013, China
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    DOI: 10.11889/j.0253-3219.2024.hjs.47.020603 Cite this Article
    Yujie FU, Tao YU, Jianhua YE. Energy-endowed kinetic chromatographic columns for rapid uranium extraction from seawater[J]. NUCLEAR TECHNIQUES, 2024, 47(2): 020603 Copy Citation Text show less
    References

    [1] Maurya A, Marvaniya K, Dobariya P et al. Protocol for extraction, characterization, and computational analysis of uranium from seawater[J]. STAR Protocols, 4, 102100(2023).

    [2] Zhu G S. Reaction: goal-oriented PAF design for uranium extraction from seawater[J]. Chem, 7, 277-278(2021).

    [3] Saito T, Brown S, Chatterjee S et al. Uranium recovery from seawater: development of fiber adsorbents prepared via atom-transfer radical polymerization[J]. Journal of Materials Chemistry A, 2, 1-14681(2014).

    [4] Jiao G J, Ma J L, Zhang J Q et al. Efficient extraction of uranium from seawater by reticular polyamidoxime-functionalized oriented holocellulose bundles[J]. Carbohydrate Polymers, 300, 120244(2023).

    [5] Luo H Y, Yao H Y, Li M et al. Fabrication of novel pectin-based adsorbents for extraction of uranium from simulated seawater: synthesis, performance and mechanistic insight[J]. Separation and Purification Technology, 311, 123283(2023).

    [6] Zhang X T, Jiang D M, Xiao Y Q et al. Adsorption of uranium(VI) from aqueous solution by modified rice stem[J]. Journal of Chemistry, 2019, 1-10(2019).

    [7] Ma D S, Xu X, Li Z W et al. Nanoemulsion assembly toward vaterite mesoporous CaCO3 for high-efficient uranium extraction from seawater[J]. Journal of Hazardous Materials, 432, 128695(2022).

    [8] Xu X, Huang C, Wang Y J et al. Engineering biaxial stretching polyethylene membrane with poly(amidoxime)-nanoparticle and mesopores architecture for uranium extraction from seawater[J]. Chemical Engineering Journal, 430, 133159(2022).

    [9] Hu E M, Lei Z W, Wang H Q et al. Extraction of uranium in caustic sludge from the production of nuclear fuel components by countercurrent dissolution and acid curing[J]. Journal of Radioanalytical and Nuclear Chemistry, 331, 2445-2450(2022).

    [10] Korak J A, Mungan A L, Watts L T. Critical review of waste brine management strategies for drinking water treatment using strong base ion exchange[J]. Journal of Hazardous Materials, 441, 129473(2023).

    [11] Yu F T, Song F R, Wang R Z et al. Sulfonated perylene-based conjugated microporous polymer as a high-performance adsorbent for photo-enhanced uranium extraction from seawater[J]. Polymer Chemistry, 12, 867-875(2021).

    [12] Chen M W, Liu T, Zhang X B et al. Photoinduced enhancement of uranium extraction from seawater by MOF/black phosphorus quantum dots heterojunction anchored on cellulose nanofiber aerogel[J]. Advanced Functional Materials, 31, 2100106(2021).

    [13] Li P, Wang J J, Wang Y et al. Photoconversion of U(VI) by TiO2: an efficient strategy for seawater uranium extraction[J]. Chemical Engineering Journal, 365, 231-241(2019).

    [14] Lee S, Kang U, Piao G X et al. Homogeneous photoconversion of seawater uranium using copper and iron mixed-oxide semiconductor electrodes[J]. Applied Catalysis B: Environmental, 207, 35-41(2017).

    [15] Liu X L, Xie Y H, Hao M J et al. Highly efficient electrocatalytic uranium extraction from seawater over an amidoxime-functionalized In-N-C catalyst[J]. Advanced Science, 9, e2201735(2022).

    [16] Ye J H, Yu T. Efficient and selective extraction of uranium from seawater based on a novel pulsed liquid chromatography radionuclide separation method[J]. Nuclear Science and Techniques, 34, 19(2023).

    [17] HE Peicong. "Mining" uranium from the sea!China successfully conducts kilogram-scale sea trial for uranium extraction using functional nanofiber membranes[EB/OL]. http://www.stdaily.com/index/kejixinwen/2021-06/29/content_1164958.shtml

    [18] Small H. Hydrodynamic chromatography a technique for size analysis of colloidal particles[J]. Journal of Colloid and Interface Science, 48, 147-161(1974).

    [19] Miyabe K. Simple moment analysis for kinetic study of chromatographic behavior of spherical particles and silica monoliths[J]. Analytical Sciences: the International Journal of the Japan Society for Analytical Chemistry, 37, 593-598(2020).

    [20] Renard J, Vidal-Madjar C, Sebille B et al. Chromatographic kinetic measurements of human serum albumin adsorption on monoclonal antibodies[J]. Journal of Molecular Recognition: JMR, 8, 85-89(1995).

    [21] Boyes B E, Walker D G, McGeer P L. Separation of large DNA restriction fragments on a size-exclusion column by a nonideal mechanism[J]. Analytical Biochemistry, 170, 127-134(1988).

    [22] Moore W R, Ward H R. Gas-solid chromatography of H2, HD, and D2. Isotopic separation and heats of adsorption on alumina1[J]. The Journal of Physical Chemistry, 64, 832-832(1960).

    [23] Fujine S, Naruse Y, Shiba K. Analysis of uranium isotope separation by redox chromatography[J]. Nuclear Technology, 62, 317-324(1983).

    [24] Wang Q Y, Xiong Y J, Lu B Z et al. Effect of chromatographic conditions on enantioseparation of bovine serum albumin chiral stationary phase in HPLC and thermodynamic studies[J]. Chirality, 25, 487-492(2013).

    [25] Mollerup J M, Hansen T B, Frederiksen S S et al. Thermodynamic modeling of chromatographic separation[J]. Advances in Chromatography, 48, 57(2009).

    [26] Darrouzain F, André C, Ismaili L et al. Huperzine A–human serum albumin association: chromatographic and thermodynamic approach[J]. Journal of Chromatography B, 820, 283-288(2005).

    [27] Broeckhoven K, Desmet G. Methods to determine the kinetic performance limit of contemporary chromatographic techniques[J]. Journal of separation science, 44, 323-339(2020).

    [28] WirkowskaWojdyła M, OstrowskaLigęza E, Górska A et al. Application of chromatographic and thermal methods to study fatty acids composition and positional distribution, oxidation kinetic parameters and melting profile as important factors characterizing amaranth and quinoa oils[J]. Applied Sciences, 12, 2166(2022).

    [29] García‐Lopera R, Gómez C M, Abad C et al. Separation efficiency of two SEC packings: Comparison of chromatographic, thermodynamic, and fractal parameters[J]. Journal of Liquid Chromatography & Related Technologies, 27, 573-593(2004).

    [30] Jeng C Y, Langer S H. Reaction kinetics and kinetic processes in modern liquid chromatographic reactors[J]. Journal of Chromatography A, 589, 1-30(1992).

    [31] Ahmad A G, Qamar S. Simulation of nonisothermal reactive liquid chromatography using two‐dimensional lumped kinetic model[J]. International Journal of Chemical Kinetics, 52, 681-700(2020).

    [32] Cheng W. Surface exclusion and geometrical exclusion[J]. Journal of Chromatography A, 362, 309-324(1986).

    [33] Brewer A K. Hydrodynamic chromatography: the underutilized size-based separation technique[J]. Chromatographia, 84, 807-811(2021).

    [34] Perveen S, Khan A, Iqbal A et al. Simulations of liquid chromatography using two-dimensional non-equilibrium lumped kinetic model with bi-Langmuir isotherm[J]. Chemical Engineering Research and Design, 181, 14-26(2022).

    [35] Liang H, Jia Z B. Non-equilibrium thermodynamic separation theory of nonlinear chromatography II. the 0-1 model for nonlinear-mass transfer kinetic processes[J]. Chinese Journal of Chromatography, 25, 785-798(2007).

    [36] Huang J C, Rothstein D, Madey R. Linear non-equilibrium chromatographic reactor with a first-order chemical reaction[J]. Journal of Chromatography A, 261, 1-9(1983).

    [37] YANG Yanzhao, YANG Yonghui, SUN Sixiu et al. Studies of thermodynamic on extraction of uranium(Ⅵ) with sulfoxides[J]. Nuclear Techniques, 22, 187-190(1999).

    [38] SHAO Hua, BAO Borong, HAN Jingtian et al. Extraction kinetics of uranium(Ⅵ) from nitric acid solution by N-octanoylpiperidine[J]. Nuclear Techniques, 25, 1051-1057(2002).

    [39] Blumberg L M. Basic structure-independent equations of kinetic performance of columns in liquid chromatography[J]. Analytical Chemistry, 93, 5309-5316(2021).

    [40] Elhefnawy O A. A new optical sensor for spectrophotometric determination of uranium(VI) and thorium (IV) in acidic medium[J]. Radiochimica Acta, 105, 993-1004(2017).

    [41] Götz C, Geipel G, Bernhard G. The influence of the temperature on the carbonate complexation of uranium(VI): a spectroscopic study[J]. Journal of Radioanalytical and Nuclear Chemistry, 287, 961-969(2011).

    [42] Vanderlinden K, Desmet G, Broeckhoven K. Effect of the feed injection method on band broadening in analytical supercritical fluid chromatography[J]. Journal of Chromatography A, 1630, 461525(2020).

    [43] ZHANG Xueqiao, YANG Yijin, XIN Xin. Study on the extraction kinetics model of chromium(VI) in the wastewater by the liquid membrane[J]. Technology of Water Treatment, 35, 24-26, 42(2009).

    [44] CHANG Zheng, QIU Ling, LIN Xue et al. Studies of liquid film diffusion mass transfer in the process of ion exchange (I)[J]. Chemical Research in Chinese Universities, 12, 267-270(1991).

    [45] AO Junxuan, XU Xiao, LI Yuna et al. Research progress in uranium extraction from seawater[J]. Journal of Radiation Resarch and Radiation Processing, 37, 020101(2021).

    [46] LI Ziming, NIU Yuqing, SU Yantao et al. Recent research progress of seawater and uranium extraction technology[J]. Nuclear Chemistry and Radiochemistry, 44, 233-245(2022).

    Yujie FU, Tao YU, Jianhua YE. Energy-endowed kinetic chromatographic columns for rapid uranium extraction from seawater[J]. NUCLEAR TECHNIQUES, 2024, 47(2): 020603
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