Surface investigations of selected materials by low-energy ion scattering technique

被引:0
|
作者
Institute of Physics, Pedagogical University, PodchorĄzych 2, 30-084 Kraków, Poland [1 ]
机构
来源
Acta Phys Pol A | 2007年 / 5卷 / 763-771期
关键词
Ion bombardment - Substrates - Iron alloys - Magnetite - Barium titanate - Surface scattering - Ion beams;
D O I
10.12693/aphyspola.111.763
中图分类号
学科分类号
摘要
Surfaces of three selected materials were investigated by means of low-energy ion-scattering technique: (1) the magnetite (Fe3O 4) exhibiting the so-called Verwey transition (Tv (bulk) = 125 K) accompanied by a small cubic-monoclinic crystal distortion, (2) the intermetallic compound NdMn2 undergoing an antiferromagnetic- paramagnetic phase transition (TN = 104 K) accompanied by a large crystal distortion with a volume change of 1%, and (3) the typical insulator BaTiO3 with two structural transitions below 300 K. The primary energy of the (Ne+, Ar+) ion beam was in the range of 4-8 keV, and the low-energy ion-scattering spectra were collected in the temperature range of 85-300 K. A large influence from the Verwey transition on the neutralization and re-ionization of scattered ions from magnetite surface was observed, while no visible change at the magnetic phase transition in NdMn 2 was revealed in the low-energy ion-scattering spectra. A strong dependence of the characteristics of the low-energy ion-scattering spectra on the irradiated time was observed for BaTiO3 indicating that this surface was heavily charged by ion bombardments.
引用
收藏
相关论文
共 50 条
  • [31] THE REALIZATION OF A LOW-ENERGY ION-SCATTERING TECHNIQUE WITH AN ION-CYCLOTRON RESONANCE SPECTROMETER
    NIKOLAEV, EN
    MORDEHAI, AV
    FRANKEVICH, VE
    RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 1991, 5 (06) : 260 - 262
  • [32] LOW-ENERGY ION SURFACE INTERACTIONS
    COOPER, BH
    DIRUBIO, CA
    KIMMEL, GA
    MCEACHERN, RL
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 1992, 64 (1-4): : 49 - 57
  • [33] Low-energy ion scattering: A quantitative method?
    Goebl, D.
    Bruckner, B.
    Roth, D.
    Ahamer, C.
    Bauer, P.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2015, 354 : 3 - 8
  • [34] STATIC LOW-ENERGY ION-SCATTERING
    BERGMANS, RH
    HUPPERTZ, WJ
    VANWELZENIS, RG
    BRONGERSMA, HH
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 1992, 64 (1-4): : 584 - 587
  • [35] LOW-ENERGY ION-SCATTERING AT SURFACES
    NIEHUS, H
    HEILAND, W
    TAGLAUER, E
    SURFACE SCIENCE REPORTS, 1993, 17 (4-5) : 213 - 303
  • [36] LOW-ENERGY ION-SCATTERING AND RECOILING
    RABALAIS, JW
    SURFACE SCIENCE, 1994, 299 (1-3) : 219 - 232
  • [37] PRINCIPLES OF LOW-ENERGY ION-SCATTERING
    HEILAND, W
    VACUUM, 1982, 32 (09) : 539 - 542
  • [38] LOW-ENERGY ION-SCATTERING SPECTROMETRY
    GROB, JJ
    SIFFERT, P
    PROGRESS IN CRYSTAL GROWTH AND CHARACTERIZATION OF MATERIALS, 1984, 8 (1-2): : 107 - 114
  • [39] LOW-ENERGY ION-SCATTERING SPECTROMETRY
    MALM, DL
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1975, 122 (08) : C247 - C247
  • [40] Low-energy ion scattering by monatomic films
    V. V. Evstifeev
    N. V. Kostina
    I. A. Egorov
    Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques, 2012, 6 : 647 - 653