Simulation of the observability of atomic defects by atomic force microscopy in contact and non-contact modes

被引:5
|
作者
Sokolov, IY [1 ]
Henderson, GS
机构
[1] Clarkson Univ, Dept Phys, Potsdam, NY 13699 USA
[2] Univ Toronto, Dept Geol, Toronto, ON M5S 3B1, Canada
关键词
atomic force microscopy; surface defects; computer simulations; atom-solid interactions;
D O I
10.1016/S0039-6028(01)01763-0
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Atomic force microscopy (AFM) scans of a crystal surface containing an atomic defect were simulated in both contact and non-contact regimes. When scanning in contact mode near a defect, the tip-sample force interaction experiences bifurcation of the lines of constant force. When the load force is small, the bifurcation causes the tip to be 'pushed" out of the defect. However, if scan force is higher than some critical value (dependent upon the composition of the tip and sample) the AFM tip becomes "trapped" in the vicinity of defect. The trapped tip remains at the level of the vacancy and consequently crashes into the sample, as the scan continues. This results in either the tip apex being destroyed, or disruption of the crystal lattice around the defect. Both effects result in the "disappearance" of the defect from the scan images. The trap is intrinsic and cannot be avoided. For the case of non-contact mode, the tip position is driven by the scan force gradient rather than the force. Simulations show that for this case the trap does not exist and atomic defects will not be destroyed. This explains why atomic defects are generally not observed when using contact mode AFM, but are observed in non-contact AFM. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
下载
收藏
页码:135 / 140
页数:6
相关论文
共 50 条
  • [31] Acquisition of high-precision images for non-contact atomic force microscopy
    Pishkenari, Hossein Nejat
    Jalili, Nader
    Meghdari, Ali
    MECHATRONICS, 2006, 16 (10) : 655 - 664
  • [32] Controlled deposition of gold nanodots using non-contact atomic force microscopy
    Pumarol, ME
    Miyahara, Y
    Gagnon, R
    Grütter, P
    NANOTECHNOLOGY, 2005, 16 (08) : 1083 - 1088
  • [33] Energy Dissipation Mechanism of Non-Contact Atomic Force Microscopy for Movable Objects
    Harada, Masanori
    Tsukada, Masaru
    E-JOURNAL OF SURFACE SCIENCE AND NANOTECHNOLOGY, 2008, 6 : 1 - 6
  • [34] Studies to identify heteroatoms in aromatic molecules with non-contact atomic force microscopy
    Zhang, Yunlong
    Zahl, Percy
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
  • [35] Molecular dynamics simulations of atomic scale processes at close approach in non-contact atomic force microscopy
    Trevethan, T
    Kantorovich, L
    NANOTECHNOLOGY, 2005, 16 (03) : S79 - S84
  • [36] Atomistic simulations of the adhesion hysteresis mechanism of atomic scale dissipation in non-contact atomic force microscopy
    Trevethan, T
    Kantorovich, L
    NANOTECHNOLOGY, 2004, 15 (02) : S34 - S39
  • [37] Simulation of section curve by phase constant dynamic mode atomic force microscopy in non-contact situation
    Nanjo, H
    Nony, L
    Yoneya, M
    Aimé, JP
    APPLIED SURFACE SCIENCE, 2003, 210 (1-2) : 49 - 53
  • [38] THE ATOMIC-SCALE HYSTERESIS IN NON CONTACT ATOMIC FORCE MICROSCOPY
    Pishkenari, Hossein Nejat
    Meghdari, Ali
    PROCEEDINGS OF THE ASME 10TH BIENNIAL CONFERENCE ON ENGINEERING SYSTEMS DESIGN AND ANALYSIS, 2010, VOL 5, 2010, : 623 - 631
  • [39] Non-Contact Atomic Force Microscopy and Scanning Tunneling Microscopy of Coexisting Reconstructions on Si(111)
    Rose, Franck
    Ishii, Takanori
    Kawai, Shigeki
    Kawakatsu, Hideki
    E-JOURNAL OF SURFACE SCIENCE AND NANOTECHNOLOGY, 2005, 3 : 258 - 262
  • [40] Atom tracking for reproducible force spectroscopy at room temperature with non-contact atomic force microscopy
    Abe, M
    Sugimoto, Y
    Custance, O
    Morita, S
    NANOTECHNOLOGY, 2005, 16 (12) : 3029 - 3034