288
Views
18
CrossRef citations to date
0
Altmetric
Articles

Production of no-carrier-added 97Ru from 11B-activated natural yttrium target and its subsequent separation using liquid–liquid extraction

, &
Pages 2372-2378 | Received 20 Jul 2016, Accepted 03 Jan 2017, Published online: 17 Feb 2017

References

  • Zanzi, I.; Srivastava, S.C.; Meinken, G.E.; Robeson, W.; Mausner, L.F.; Fairchild, R.G.; Margouleff, D. (1989) A new cholescintigraphic agent: Ruthenium-97-DISIDA. International Journal of Radiation Applications and Instrumentation. Part B, Nuclear Medicine and Biology, 16 (4): 397.
  • Oster, Z.H.; Som, P.; Gil, M.C.; Fairchild, R.G.; Goldman, A.G.; Schachner, E.R.; Sacker, D.F.; Atkins, H.L.; Brill, A.B. (1981) Ruthenium-97 DTPA: A new radiopharmaceutical for cisternography. Journal of Nuclear Medicine, 22: 269.
  • Som P.; Oster, Z.H.; Matsui, K.; Guglielmi, G.; Persson, B.R.R.; Pellettieri, M.L.; Srivastava, S.C.; Richards, P.; Atkins, H.L.; Brill, A.B. (1983) 97Ru-transferrin uptake in tumor and abscess. European Journal of Nuclear Medicine, 8: 491.
  • Shao, H.S.; Meinken, G.E.; Srivastava, S.C.; Slosman, D.; Sacker, D.F.; Som, P.; Brill, A.B. (1986) In vitro and in vivo characterization of ruthenium bleomycin compared to cobalt- and copper-bleomycin. Journal of Nuclear Medicine, 27: 1044.
  • Schachner, E.R.; Gil, M.C.; Atkins, H.L.; Som, P.; Srivastava, S.C.; Badia, J.; Sacker, D.F.; Fairchild, R.G.; Richards, P. (1981) Ruthenium-97 hepatobiliary agents for delayed studies of the biliary track I: Ru-97 PIPIDA: concise communication. Journal of Nuclear Medicine, 22: 352.
  • Warner, J.A.; Gladkis, L.G.; Smith, P.N.; Scarvell, J.M.; Timmers, H. (2012) Demonstration of a new technique using radioisotope tracers to measure the backside wear rate on Tibial inserts. Tribology Letters, 46: 139.
  • Srivastava S.C.; Som, P.; Meinken, G.; Sewatkar, A.; Ku, T.H. (1978) Ruthenium-97 labeled compounds – A new class of radiopharmaceuticals. Brookhaven National Laboratory Report BNL 24614.
  • Lagunas-Solar, M.C.; Avila, M.J.; Nvarro, N.J.; Johnson, P.C. (1983) Cyclotron production of no-carrier-added 97Ru by proton bombardment of 103Rh targets. The International Journal of Applied Radiation and Isotopes, 34: 915.
  • Zaitseva, N.G.; Rurarz, E.; Vobecky, M.; Hwan, K.H.; Nowak, K.; Tethal, T.; Khalkin, V.A.; Popinenkova, L.M. (1992) Excitation function and yield for 97Ru production in 99Tc(p, 3n)97Ru reaction in 20–100 MeV proton energy range. Radiochimica Acta, 56: 59.
  • Zaitseva, N.G.; Stegailov, V.I.; Khalkin, V.A.; Shakun, N.G.; Shishlyannikov, P.T., Bukov, K.G. (1996) Metal technetium target and target chemistry for the production of 97Ru via the 99Tc(p, 3n)97Ru reaction. Applied Radiation Isotopes, 47: 145.
  • Kofstad, K. (1953) Spallation and fission of silver. Lawrence Berkeley National Laboratory Report UCRL-2265.
  • Pao, P.J.; Zhou, J.L.; Silvester, D.J.; Waters, S.L. (1981) A rapid and simple separation of 97Ru from irradiated molybdenum. Radioanalytical Letters, 46: 21.
  • Comar, D.; Crouzel, C. (1976) Ruthenium-97 preparation with a compact cyclotron. Radiochemical and Radioanalytical Letters, 27: 307.
  • Comparetto, G.; Qaim S.M. (1980) A comparative study of production of short-lived neutron deficient isotopes 94,95,97Ru in α- and 3He-particle induced nuclear reactions on natural molybdenum. Radiochimica Acta, 27: 177.
  • Ramamoorthy, N.; Das, M.K.; Sarkar, B.R.; Mani, R.S. (1985) Studies on the production of 97Ru, 38K and 34mCl at the variable energy cyclotron of Bhabha Atomic Research Centre, Calcutta. In: Radiopharmaceuticals and Labelled Compounds. (Proc. Int. Conf. 22–26 October 1984, Tokyo), IAEA Vienna. p. 107.
  • Maiti, M.; Lahiri, S. (2011) Production and separation of 97Ru from 7Li activated natural niobium. Radiochimica Acta, 99: 359.
  • Maiti, M. (2013) Production and separation of 97Ru and coproduced 95Tc from 12C-induced reaction on natural yttrium target. Radiochimica Acta, 101: 437.
  • Maiti, M.; Lahiri, S. (2015) Measurement of yield of residues produced in 12C + natY reaction and subsequent separation of 97Ru from Y target using cation exchange resin. Radiochimica Acta, 103 (1): 7.
  • Lagunas-Solar, M.C.; Avila, M.J.; Johnson, P.C. (1987) Targetry and radiochemical methods for the simultaneous cyclotron production of no-carrier-added radiopharmaceutical-quality 100Pd, 97Ru and 101mRh. Applied Radiation and Isotopes, 38: 151.
  • Lahiri, S.; Mukhopadhyay, B.; Das, N.R. (1997) LLX separation of carrier-free 94,95,97,103Ru, 93,94,95,96,99mTc and 95,96Nb produced in alpha-particle activated molybdenum by TOA. Journal of Radioanalytical and Nuclear Chemistry, 221: 167.
  • Lahiri, S.; Mukhopadhyay, B. (1997) Liquid–liquid extraction of Carrier-free radioisotopes produced in α-particle activated molybdenum target by HDEHP and TBP. Applied Radiation and Isotopes, 48: 925.
  • Lumetta G.J.; Gelis, A.V.; Braley, J.C.; Carter, J.C.; Pittman, J.W.; Warner M.G.; Vandegrift G.F. (2013) The TRUSPEAK concept: Combining CMPO and HDEHP for separating trivalent lanthanides from the transuranic elements. Separation Science and Technology, 31 (3): 223.
  • Panigrahi, S.; Dash, T.; Nathsarma, K.C.; Sarangi, K. (2014) Extraction of ruthenium using both tertiary and quaternary amine from chloride media. Separation Science and Technology, 49 (4): 545.
  • Kuchekar, S.R.; Shelar, Y.S.; Bhor, R.J.; Anuse, M.A.; Naval, R.M. (2015) Separation and spectrophotometric determination of osmium(IV) and ruthenium(III) with O-methoxyphenyl thiourea as chromogenic legand: Sequential separation of osmium(IV), ruthenium(III), and platinum(IV). Separation Science and Technology, 50 (8): 1190.
  • Mowafy, E.A.; Mohamed, D.; Alshammari, A. (2015) Extraction and separation of selected platinum-group and base metal ions from nitric acid solutions using thiodiglycolamides (TDGA) as novel extractants. Separation Science and Technology, 50 (15): 2352.
  • Swain, P.; Annapoorani, S.; Srinivasan, R.; Mallika, C.; Mudali, U.K.; Natarajan, R. (2014) Separation of ruthenium from simulated nuclear waste in nitric acid medium using n-paraffin hydrocarbon. Separation Science and Technology, 49 (1): 112.
  • http://groups.nscl.msu.edu/lise/5_13/lise_5_13.html.
  • Gavron, A. (1980) Statistical model calculations in heavy ion reactions. Physical Review C, 21: 230.
  • http://www.nndc.bnl.gov/nudat2/(National Nuclear Data Center, Brookhaven National Laboratory).
  • Dutta, B.; Maiti, M.; Lahiri, S. (2009) Production of 88,89Zr by proton induced activation of natY and separation by SLX and LLX. Journal of Radioanalytical and Nuclear Chemistry, 281: 663.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.