Nanosized grain polycrystalline scintillators for special nuclear materials detection

被引:0
|
作者
Chen, C. F. [1 ]
Cooley, J. [1 ]
Stanek, C. [1 ]
Byler, D. [1 ]
Volz, H. [1 ]
Dickerson, R. [1 ]
Dombrowski, D. [1 ]
Tucker, T. [1 ]
Bartram, B. [1 ]
Ewing, B. [1 ]
Mauro, M. [1 ]
Weinberg, R. [1 ]
机构
[1] Los Alamos Natl Lab, Los Alamos, NM 87545 USA
关键词
nanoparticle; nanosized grain; polycrystalline; LaBr3 : Ce; scintillator; special nuclear materials; detector; lanthanum bromide;
D O I
10.1117/12.740826
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The aim of this work was to explore the limits of polycrystalline ceramic scintillator in countering the nuclear threat. The goal was to develop a polycrystalline LaBr3:Ce, which can be processed from ceramic forming techniques and can be produced in large size scintillator panels with lower cost and high production rate. Three high purity raw powders were used as the starting materials including LaBr3, LaCl3, and CeBr3- Powder characteristics were measured. A melt spinning method was used to synthesize the nanoparticle LaBr3:Ce with stoichiometric compositions. The synthesized nanoparticles were characterized and the average particle size of the synthesized nanoparticle LaBr3:Ce was about 50 nm. The melt spun powders were consolidated using a "Nanosintering" method to achieve a high density while maintaining the stoichiometric composition. The grain size of the sintered polycrystalline is about 50 nm, which shows no grain growth during the densification process.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Percolation models of grain boundary wetting in polycrystalline materials
    Volovich, P. M.
    Barrallier, L.
    Skvortsova, Z. N.
    Traskin, V. Yu.
    RUSSIAN JOURNAL OF GENERAL CHEMISTRY, 2008, 78 (11) : 2182 - 2190
  • [42] Diffraction stress analysis of grain interaction in polycrystalline materials
    Welzel, U
    Fréour, S
    Kumar, A
    Mittemeijer, EJ
    ZEITSCHRIFT FUR KRISTALLOGRAPHIE, 2006, : 43 - 48
  • [43] GROWTH OF GRAIN-BOUNDARY CAVITIES IN POLYCRYSTALLINE MATERIALS
    BURTON, B
    PHILOSOPHICAL MAGAZINE, 1974, 30 (04): : 953 - 956
  • [44] The Electrical Behaviors of Grain Boundaries in Polycrystalline Optoelectronic Materials
    Gao, Zheng
    Leng, Chongqian
    Zhao, Hongquan
    Wei, Xingzhan
    Shi, Haofei
    Xiao, Zeyun
    ADVANCED MATERIALS, 2024, 36 (04)
  • [45] QUANTITATIVE EVALUATION OF THE CRYSTALLINITY OF GRAIN BOUNDARIES IN POLYCRYSTALLINE MATERIALS
    Murata, Naokazu
    Suzuki, Ken
    Miura, Hideo
    INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION - 2012, VOL 8, 2012, : 389 - 395
  • [46] INFLUENCE OF GRAIN-SIZE ON THE STRENGTH OF POLYCRYSTALLINE MATERIALS
    KANCHEYEV, OD
    RUSSIAN METALLURGY, 1983, (05): : 110 - 114
  • [47] Ultrasonic attenuation of polycrystalline materials with a distribution of grain sizes
    Arguelles, Andrea P.
    Turner, Joseph A.
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2017, 141 (06): : 4347 - 4353
  • [48] Grain boundary effects and failure evolution in polycrystalline materials
    Ashmawi, WM
    Zikry, MA
    IUTAM SYMPOSIUM ON MULTISCALE MODELING AND CHARACTERIZATION OF ELASTIC-INELASTIC BEHAVIOR OF ENGINEERING MATERIALS, PROCEEDINGS, 2004, 114 : 283 - 290
  • [49] The Pricing of Special Nuclear Materials
    Patrick, John Vernon, Jr.
    LAND ECONOMICS, 1955, 31 (04) : 339 - 350
  • [50] SPECIAL GRAIN BOUNDARIES IN THE EQUILIBRIUM STRUCTURE OF POLYCRYSTALLINE ALUMINIUM.
    Fionova, L.K.
    Physics of Metals and Metallography, 1979, 48 (05): : 84 - 89