Preparation of 99Mo from the 100Mo(γ, n) reaction and chemical separation of 99mTc

被引:0
|
作者
A. Gopalakrishna
H. Naik
S. V. Suryanarayana
Y. Naik
V. T. Nimje
B. K. Nayak
S. K. Sarkar
S. Padmanabhan
C. Kothalkar
P. Naskar
A. C. Dey
A. Goswami
机构
[1] Radiation medicine Centre,Medical Cyclotron Facility, Board of Radiation and Isotope Technology
[2] Bhabha Atomic Research Centre,Radiochemistry Division
[3] Bhabha Atomic Research Centre,Nuclear Physics Division
[4] Bhabha Atomic Research Centre,Product Development Division
[5] Bhabha Atomic ResearchCentre,Accelerator and Pulse Power Division
[6] Board of Radiation and Isotope Technology,Radiopharmaceuticals Programme
[7] Navi,undefined
关键词
Medical isotope ; Mo–; Tc; Mo(; ,; ) reaction; Molybdenum trioxide; Zirconium molybdate gel; Off-line ; -ray spectrometric technique; Chemical yield;
D O I
暂无
中图分类号
学科分类号
摘要
The radionuclide 99Mo has been prepared by 100Mo(γ, n) reaction using two types of natural molybdenum compound (molybdenum trioxide and zirconium molybdate gel) with the bremsstrahlung end-point energies of 10 and 15 MeV. After the equilibrium, 99mTc was separated as NaTcO4 from the irradiated samples using two different chemical procedures to examine the chemical yield. The separated Na[99mTc]TcO4 from the ZrMo gel has the 99Mo breakthrough of <10−4 %, radiochemical purity >99 % as well as chemical impurities of Al, Mo and Zr < 10 ppm. The estimation of 99Mo and 99mTc was done by using off-line γ-ray spectrometric technique. The chemical yield of the separated 99mTc from the dissolved molybdenum trioxide is 70.7–75.2 %, whereas in the undissolved zirconium molybdate gel, it is 19.1–43 %. The second method is preferable because it is user friendly in hospital radiopharmacy throughout the shelf-life.
引用
收藏
页码:431 / 438
页数:7
相关论文
共 50 条
  • [41] β-MoO3 Whiskers in 99Mo/99mTc Radioisotope Production and 99Mo/99mTc Extraction Using Hot Atoms
    Ngo, Minh Chu
    Fujita, Yoshitaka
    Suzuki, Tatsuya
    Do, Thi Mai Dung
    Seki, Misaki
    Nakayama, Tadachika
    Niihara, Koichi
    Suematsu, Hisayuki
    INORGANIC CHEMISTRY, 2023, 62 (32) : 13140 - 13147
  • [42] Reexamination of cross sections of the 100Mo(p,2n)99mTc reaction
    Takacs, S.
    Hermanne, A.
    Ditroi, F.
    Tarkanyi, F.
    Aikawa, M.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2015, 347 : 26 - 38
  • [43] Preparation of 99Mo/99mTc generator based on alumina 99Mo-molybdate (VI) gel
    El-Absy, M. A.
    El-Amir, M. A.
    Fasih, T. W.
    Ramadan, H. E.
    El-Shahat, M. F.
    JOURNAL OF RADIOANALYTICAL AND NUCLEAR CHEMISTRY, 2014, 299 (03) : 1859 - 1864
  • [44] Molybdenum-99 production pathways and the sorbents for 99Mo/99mTc generator systems using (n, γ) 99Mo: a review
    Hasan, Shameem
    Prelas, Mark A.
    SN APPLIED SCIENCES, 2020, 2 (11):
  • [45] Molybdenum-99 production pathways and the sorbents for 99Mo/99mTc generator systems using (n, γ) 99Mo: a review
    Shameem Hasan
    Mark A. Prelas
    SN Applied Sciences, 2020, 2
  • [46] Application of AnaLig resin for 99mTc separation from 100Mo target irradiated in cyclotron
    Pawlak, D. W.
    Wojdowska, W.
    Parus, L. J.
    Mikolajczak, R.
    APPLIED RADIATION AND ISOTOPES, 2016, 113 : 75 - 78
  • [47] Separation of 99mTc from 99Mo by Using TOPO — Kerosene Supported Liquid Membrane
    T. Yassine
    Journal of Radioanalytical and Nuclear Chemistry, 2000, 246 : 665 - 669
  • [48] SEPARATION OF 99MTC FROM 99MO SORBED ON ALUMINIUM OXIDE BY PHYSIOLOGICAL SALINE SOLUTION
    RAVNIK, V
    GORENC, B
    ATOMPRAXIS, 1967, 13 (06): : 258 - &
  • [49] An approach towards reverse generator system for 99mTc separation from LSA 99Mo
    Cieszykowska, Izabela
    Zoltowska, Malgorzata
    Mikolajczak, Renata
    NUCLEAR MEDICINE AND BIOLOGY, 2021, 96-97 : S97 - S97
  • [50] Excitation functions for the cyclotron production of 99mTc and 99Mo
    Scholten, B
    Lambrecht, RM
    Cogneau, M
    Ruiz, HV
    Qaim, SM
    APPLIED RADIATION AND ISOTOPES, 1999, 51 (01) : 69 - 80