Radiation endurance in Al2O3 nanoceramics

被引:0
|
作者
F. García Ferré
A. Mairov
L. Ceseracciu
Y. Serruys
P. Trocellier
C. Baumier
O. Kaïtasov
R. Brescia
D. Gastaldi
P. Vena
M. G. Beghi
L. Beck
K. Sridharan
F. Di Fonzo
机构
[1] Center for Nano Science and Technology @PoliMi,Department of Engineering Physics
[2] Istituto Italiano di Tecnologia,Department of Nanochemistry
[3] University of Wisconsin-Madison,undefined
[4] 1500 Engineering Drive,undefined
[5] Smart Materials,undefined
[6] Nanophysics,undefined
[7] Istituto Italiano di Tecnologia,undefined
[8] Laboratoire JANNUS,undefined
[9] DEN-Service de Recherches de Métallurgie Physique,undefined
[10] CEA,undefined
[11] Université Paris Saclay,undefined
[12] CNRS/IN2P3/CSNSM/SEMIRAMIS/JANNUS-Orsay,undefined
[13] Université Paris Sud,undefined
[14] Istituto Italiano di Tecnologia,undefined
[15] Dipartimento di Chimica,undefined
[16] Materiali ed Ingegneria dei Materiali,undefined
[17] Politecnico di Milano,undefined
[18] Dipartimento di Energia,undefined
[19] Politecnico di Milano,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The lack of suitable materials solutions stands as a major challenge for the development of advanced nuclear systems. Most issues are related to the simultaneous action of high temperatures, corrosive environments and radiation damage. Oxide nanoceramics are a promising class of materials which may benefit from the radiation tolerance of nanomaterials and the chemical compatibility of ceramics with many highly corrosive environments. Here, using thin films as a model system, we provide new insights into the radiation tolerance of oxide nanoceramics exposed to increasing damage levels at 600 °C –namely 20, 40 and 150 displacements per atom. Specifically, we investigate the evolution of the structural features, the mechanical properties, and the response to impact loading of Al2O3 thin films. Initially, the thin films contain a homogeneous dispersion of nanocrystals in an amorphous matrix. Irradiation induces crystallization of the amorphous phase, followed by grain growth. Crystallization brings along an enhancement of hardness, while grain growth induces softening according to the Hall-Petch effect. During grain growth, the excess mechanical energy is dissipated by twinning. The main energy dissipation mechanisms available upon impact loading are lattice plasticity and localized amorphization. These mechanisms are available in the irradiated material, but not in the as-deposited films.
引用
收藏
相关论文
共 50 条
  • [11] Transparent polycrystalline nanoceramics consisting of triclinic Al2SiO5 kyanite and Al2O3 corundum
    Gaida, Nico A. (naga@tf.uni-kiel.de), 1600, Blackwell Publishing Inc. (101):
  • [12] Transparent polycrystalline nanoceramics consisting of triclinic Al2SiO5 kyanite and Al2O3 corundum
    Gaida, Nico A.
    Nishiyama, Norimasa
    Masuno, Atsunobu
    Schuermann, Ulrich
    Giehl, Christopher
    Beermann, Oliver
    Ohfuji, Hiroaki
    Bednarcik, Jozef
    Kulik, Eleonora
    Holzheid, Astrid
    Irifune, Tetsuo
    Kienle, Lorenz
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2018, 101 (03) : 998 - 1003
  • [13] Radiation enhanced diffusion of Ti in Al2O3
    Weiss, M
    Lu, M
    van der Heide, P
    Lee, SM
    Ada, E
    Lee, HS
    Rabalais, JW
    JOURNAL OF CHEMICAL PHYSICS, 2000, 113 (12): : 5058 - 5064
  • [14] RADIATION HARDNESS IN AL2O3 MIS DEVICES
    HARARI, E
    ROYCE, BSH
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1973, 18 (04): : 555 - 555
  • [15] RADIATION RESISTANCE OF AL2O3 MOS DEVICES
    ZAININGER, KH
    WAXMAN, AS
    IEEE TRANSACTIONS ON ELECTRON DEVICES, 1969, ED16 (04) : 333 - +
  • [16] Radiation induced conductivity in α Al2O3 crystals
    B. P. Aduev
    É. D. Aluker
    V. N. Shvaiko
    Physics of the Solid State, 1997, 39 : 1784 - 1785
  • [17] Comparative study of the luminescence of Al2O3:C and Al2O3 crystals under synchrotron radiation excitation
    Zorenko, Yu.
    Fabisiak, K.
    Zorenko, T.
    Mandowski, A.
    Xia, Qi
    Batentschuk, M.
    Friedrich, J.
    Zhusupkalieva, G.
    JOURNAL OF LUMINESCENCE, 2013, 144 : 41 - 44
  • [18] Surface and catalytic properties of Al2O3, CuO/Al2O3 and ZnO/Al2O3 systems
    El-Nabarawy, Th.
    Attia, A.A.
    Hassan, N.A.
    Youssef, A.M.
    Adsorption Science and Technology, 1995, 12 (02):
  • [19] Mechanism for the κ-Al2O3 to the α-Al2O3 transition and the stability of κ-Al2O3 under volume expansion
    Belonoshko, AB
    Ahuja, R
    Johansson, B
    PHYSICAL REVIEW B, 2000, 61 (05): : 3131 - 3134
  • [20] Interfacial reactions in Al2O3/Ti, Al2O3/Ti3Al and Al2O3/TiAl bilayers
    Zalar, A
    Baretzky, BMM
    Hofmann, S
    Rühle, M
    Panjan, P
    THIN SOLID FILMS, 1999, 352 (1-2) : 151 - 155