• NUCLEAR TECHNIQUES
  • Vol. 46, Issue 9, 090501 (2023)
Qize LIU1, Ofoq Normahmedov1, Mingkun JING1, Wenhan DAI1, Zhi ZENG1、*, Tao XUE1, Yang TIAN1, Ming ZENG1, Hao MA1, E Titarenko Yu2, K V Pavlov2, A Yu Titarenko2, V M Zhivun2, A A Kovalishin2, T V Kulevoy2, and R S Khalikov2
Author Affiliations
  • 1Department of Engineering Physics, Tsinghua University, Beijing 100084, China
  • 2NRC "Kurchatov Institute", Moscow, 123182, Kurchatov sq. 1, Russia
  • show less
    DOI: 10.11889/j.0253-3219.2023.hjs.46.090501 Cite this Article
    Qize LIU, Ofoq Normahmedov, Mingkun JING, Wenhan DAI, Zhi ZENG, Tao XUE, Yang TIAN, Ming ZENG, Hao MA, E Titarenko Yu, K V Pavlov, A Yu Titarenko, V M Zhivun, A A Kovalishin, T V Kulevoy, R S Khalikov. Determination of cross-sections of natPb(p,x)207Bi and natPb(p,x)194Hg by GeTHU[J]. NUCLEAR TECHNIQUES, 2023, 46(9): 090501 Copy Citation Text show less
    References

    [1] Kapoor S. Accelerator-driven sub-critical reactor system (ADS) for nuclear energy generation[J]. Pramana, 59, 941-950(2002).

    [2] Nifenecker H, Meplan O, David S[M]. Accelerator driven subcritical reactors(2003).

    [3] Titarenko Y E, Batyaev V F, Mulambetov R D et al. Excitation functions of product nuclei from 40 to 2 600 MeV proton-irradiated 206,207,208,natPb and 209Bi[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 562, 801-805(2006).

    [4] Titarenko Yu E, Batyaev V F, Karpikhin E I et al. Experimental and theoretical studies of the yields of residual product nuclei produced in thin Pb and Bi targets irradiated by 40⁓2 600 MeV protons[R](2009).

    [5] Aleksandrov Y V, Vasiljev S K, Ivanov R B et al. Cross sections for the production of radionuclides in lead target irradiated with 660 MeV protons[C], 2, 1996.

    [6] Gloris M, Michel R, Herpers U et al. Production of residual nuclei from irradiation of thin Pb-targets with protons up to 1.6 GeV[J]. Nuclear Instruments and Methods in Physics Research Section B, 113, 429-433(1996).

    [7] Kuhnhenn J, Herpers U, Glasser W et al. Thin target cross sections for proton-induced production of radionuclides from lead for E(P)<71 MeV[J]. Radiochimica Acta, 89, 697(2001).

    [8] Kuhnhenn J. Thin target cross sections for proton-induced production of radionuclides from lead and bismuth over the proton energy range from 9 to 71 MeV[D](2001).

    [9] Gloris M, Michel R, Sudbrok F et al. Proton-induced production of residual radionuclides in lead at intermediate energies[J]. Nuclear Instruments and Methods in Physics Research Section A, 463, 593-633(2001).

    [10] Titarenko Y E, Batyaev V F, Pavlov K V et al. 208, 207, 206, natPb(p, x)207Bi and 209Bi(p, x)207Bi excitation functions in the energy range of 0.04~2.6 GeV[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 984, 164635(2020).

    [11] Titarenko Y E, Batyaev V F, Pavlov K V et al. 206,207,208,natPb(p, x)194Hg and 209Bi(p, x)194Hg excitation functions in the energy range 0.04⁓2.6 GeV[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 1026, 166151(2022).

    [12] Cheng J P, Kang K J, Li J M et al. The China Jinping underground laboratory and its early science[J]. Annual Review of Nuclear and Particle Science, 67, 231-251(2017).

    [13] Wu Y C, Hao X Q, Yue Q et al. Measurement of cosmic ray flux in the China JinPing underground laboratory[J]. Chinese Physics C, 37, 086001(2013).

    [14] Zeng Z, Su J, Ma H et al. Environmental gamma background measurements in China Jinping Underground Laboratory[J]. Journal of Radioanalytical and Nuclear Chemistry, 301, 443-450(2014).

    [15] Zeng Z, Mi Y H, Zeng M et al. Characterization of a broad-energy germanium detector for its use in CJPL[J]. Nuclear Science and Techniques, 28, 7(2017).

    [16] Zeng W H, Ma H, Zeng M et al. Evaluation of cosmogenic activation of copper and germanium during production in Jinping Underground Laboratory[J]. Nuclear Science and Techniques, 31, 50(2020).

    [17] Kajino T. Underground laboratory JUNA shedding light on stellar nucleosynthesis[J]. Nuclear Science and Techniques, 34, 42(2023).

    [18] Zeng Z, Mi Y H, Ma H et al. The characteristics of a low background germanium gamma ray spectrometer at China JinPing underground laboratory[J]. Applied Radiation and Isotopes, 91, 165-170(2014).

    [19] Chu S Y F, Ekström L P, Firestone R B. The Lund/LBNL nuclear data search[DB/OL]. http://nucleardata.nuclear.lu.se/toi/

    [20] She Z, Ma H, Zeng W et al. SAGE: a Monte Carlo simulation framework for experiments with germanium detectors[J]. Journal of Instrumentation, 16, T09005(2021).

    [21] Allison J, Amako K, Apostolakis J et al. Recent developments in Geant4[J]. Nuclear Instruments and Methods in Physics Research Section A, 835, 186-225(2016).

    [22] Allison J, Amako K, Apostolakis J et al. Geant4 developments and applications[J]. IEEE Transactions on Nuclear Science, 53, 270-278(2006).

    [23] Agostinelli S, Allison J, Amako K et al. Geant4—a simulation toolkit[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 506, 250-303(2003).

    [24] Koning A J, Rochman D, Sublet J C et al. TENDL: complete nuclear data library for innovative nuclear science and technology[J]. Nuclear Data Sheets, 155, 1-55(2019).

    Qize LIU, Ofoq Normahmedov, Mingkun JING, Wenhan DAI, Zhi ZENG, Tao XUE, Yang TIAN, Ming ZENG, Hao MA, E Titarenko Yu, K V Pavlov, A Yu Titarenko, V M Zhivun, A A Kovalishin, T V Kulevoy, R S Khalikov. Determination of cross-sections of natPb(p,x)207Bi and natPb(p,x)194Hg by GeTHU[J]. NUCLEAR TECHNIQUES, 2023, 46(9): 090501
    Download Citation