SEY and low-energy SEY of conductive surfaces

被引:5
作者
Cimino, R. [1 ]
Angelucci, M. [1 ]
Gonzalez, L. A. [1 ]
Larciprete, R. [1 ,2 ]
机构
[1] LNF INFN, POB 13, I-00044 Rome, Italy
[2] CNR ISC Ist Sistemi Complessi, Via Taurini 19, I-00185 Rome, Italy
基金
欧盟地平线“2020”;
关键词
SECONDARY-ELECTRON-EMISSION; SPECTROSCOPY; GRAPHITE; BOMBARDMENT; YIELD; TRANSMISSION; DAMAGE; STM;
D O I
10.1016/j.elspec.2019.06.008
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
The study of Secondary Electron Yield (SEY) is widely performed to address important properties of materials to be used in a very wide spectrum of applications. It is, therefore, extremely important to understand the SEY dependence on material type, surface contaminants, structural quality and surface damage. We review here our recent studies of such items performed by looking at some representative conductive materials as noble metals and carbon based surfaces. Polycrystalline Ag, Au and Cu samples have been studied as introduced in the ultra-high vacuum chamber (therefore with an significant surface contamination) and after having been cleaned by ion sputtering. The comparison between the curves confirms that the SEY behavior is strongly influenced by the chemical state of the metal surfaces. We demonstrate the ability of SEY to determine work function values with high accuracy if the experimental system allows using very slow primary electrons. We also investigated, for the Cu sample, the effect on SEY of minimal amount of contaminants in the sub-monolayer regime showing that SEY is highly sensitive to the presence of adsorbates even at such very low coverages, specially for low energy primary electrons. In the case of C surfaces we summarize here the effect that the structural ordering of the C lattice has on the macroscopic SEY properties of ultrathin C layers. In particular we followed the SEY evolution during the thermal graphitization of thin amorphous carbon layers and during the amorphization of highly oriented pyrolytic graphite by means of Ar+ bombardment. In the first case the SEY decrease observed with the progressive conversion of sp(3) hybrids into six-fold aromatic domains was related to the electronic structure of the C-films close to the Fermi level. We found that a moderate structural quality of the C layer, corresponding to aromatic clusters of limited size, is sufficient to obtain a SEY as low as similar to 1. For the bombarded graphite, the strong lattice damage remains limited to the near surface layer, where the high density of defects reduces the transport of incoming and secondary electrons. Then, the SEY curves resulted differently modified in the low and high primary energy regions, but their maximal values remained favorably low. Our findings demonstrate that SEY, besides being an indispensable
引用
收藏
页数:8
相关论文
共 50 条
  • [21] Transient Characteristics of Charging Effects due to E-Beam Irradiation: A Method of SEY-Based Charging Balance Mode
    Feng, Guobao
    Liu, Lu
    Cui, Wanzhao
    Wang, Rui
    Hu, Tiancun
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2019, 47 (08) : 3783 - 3789
  • [22] Irradiation of nanoporous structures with light and heavy low-energy ions: Sputtering enhancement and pore sealing
    Sycheva, Anastasia A.
    Voronina, Ekaterina N.
    Rakhimova, Tatyana V.
    Novikov, Lev S.
    Rakhimov, Alexander T.
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A, 2020, 38 (05):
  • [23] Low-energy electron reflectivity of graphene on copper and other substrates
    Srivastava, N.
    Gao, Qin
    Widom, M.
    Feenstra, R. M.
    Nie, Shu
    McCarty, K. F.
    Vlassiouk, I. V.
    PHYSICAL REVIEW B, 2013, 87 (24)
  • [24] Subsurface nitrogen bonding and thermal stability of low-energy nitrogen implanted H-Diamond (100) surfaces studied by XPS and HREELS
    Kuntumalla, Mohan Kumar
    Fischer, Miriam
    Hoffman, Alon
    SURFACE SCIENCE, 2024, 739
  • [25] Low-energy ion channeling in nanocubes
    Choupanian, Shiva
    Moller, Wolfhard
    Seyring, Martin
    Ronning, Carsten
    NANO RESEARCH, 2023, 16 (01) : 1522 - 1526
  • [26] Dissociation of Thymine by Low-Energy Electrons
    Cho, Hyuck
    Noh, Hyung-Ah
    JOURNAL OF RADIATION PROTECTION AND RESEARCH, 2020, 45 (01): : 11 - 15
  • [27] Low-Energy Chirps for Bioimpedance Measurement
    Paavle, Toivo
    Min, Mart
    Trebbels, Dennis
    2011 34TH INTERNATIONAL CONFERENCE ON TELECOMMUNICATIONS AND SIGNAL PROCESSING (TSP), 2011, : 398 - 402
  • [28] Low-energy beam line at KVI
    Toprek, D
    Formanoy, I
    Brandenburg, S
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2006, 558 (01) : 247 - 248
  • [29] Low-energy ion channeling in nanocubes
    Choupanian, Shiva
    Moller, Wolfhard
    Seyring, Martin
    Ronning, Carsten
    NANO RESEARCH, 2022,
  • [30] The low-energy ion range in DNA
    Yu, L. D.
    Kamwanna, T.
    Brown, I. G.
    PHYSICS IN MEDICINE AND BIOLOGY, 2009, 54 (16) : 5009 - 5022