Water molecule clusters measured at water/air interfaces using atomic force microscopy

被引:41
|
作者
Teschke, O [1 ]
de Souza, EF
机构
[1] Univ Estadual Campinas, Inst Fis, Lab NanoEstructuras & Interfaces, BR-13083970 Campinas, SP, Brazil
[2] Pontificia Univ Catolica Campinas, Fac Quim, Ctr Ciencias Exatas Ambientais & Tecnol, BR-13086900 Campinas, SP, Brazil
基金
巴西圣保罗研究基金会;
关键词
D O I
10.1039/b511257e
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
During the tip approach to hydrophobic surfaces like the water/air interface, the measured interaction force reveals a strong attraction with a range of similar to 250 nm at some points along the interface. The range of this force is similar to 100 times larger than the measured for gold (similar to 3 nm) and 10 times larger than the one for hydrophobic silicon surfaces (similar to 25 nm). At other points the interface exerts a medium range repulsive force growing stepwise as the tip approaches the interface plane, consequently the hydrophobic force is a strong function of position. To explain these results we propose a model where the force on the tip is associated with the exchange of a small volume of the interface with a dielectric permittivity epsilon(int) by the tip with a dielectric permittivity epsilon(tip). By assuming a oscillatory spatial dependence for the dielectric permittivity it is possible to fit the measured force profiles. This dielectric spatial variation was associated with the orientation of the water molecules arrangement in the interfacial region. Small nanosized hydrogen-bond connected cages of water molecules present in bulk water at the interface are oriented by the interfacial electric field generated by the water molecules broken bonds, one broken hydrogen bond out of every four. This interfacial field orients small clusters formed by similar to 100 water molecules into larger clusters (similar to 100 nm). In the limit of small (less than 5 nm thick) water molecule cages we have modeled the static dielectric permittivity (epsilon) as the average response of those cages. In these regions the dielectric permittivity for water/air interfaces decreases monotonically from the bulk value epsilon similar to 80 to similar to 2 at the interface. For regions filled with medium size cages, the tip senses the structure of each cage and the static dielectric permittivity is matched to the geometrical features of these cages sized similar to 25 to 40 nm. Interfacial electric energy density values were calculated using the electric field intensity and the dielectric permittivity obtained by the fitting of the experimental points. The integration of the electric energy density along the interfacial region gives a value of 0.072 J m(-2) for interfacial energy density for points where the hydrophobic force has a range of similar to 250 nm. Regions formed by various clusters result in lower values of the interfacial energy density.
引用
收藏
页码:3856 / 3865
页数:10
相关论文
共 50 条
  • [21] Damping near solid-liquid interfaces measured with atomic force microscopy
    Cambridge Univ, Cambridge, United Kingdom
    Langmuir, 4 (922-925):
  • [22] Imaging surface nanobubbles at graphite-water interfaces with different atomic force microscopy modes
    Yang, Chih-Wen
    Lu, Yi-Hsien
    Hwang, Ing-Shouh
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2013, 25 (18)
  • [23] Adhesion forces measured by atomic force microscopy in humid air.
    Sedin, DL
    Rowlen, KL
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2000, 219 : U320 - U320
  • [24] ATOMIC FORCE MICROSCOPY OF DNA AND BACTERIOPHAGE IN AIR, WATER AND PROPANOL - THE ROLE OF ADHESION FORCES
    LYUBCHENKO, YL
    ODEN, PI
    LAMPNER, D
    LINDSAY, SM
    DUNKER, KA
    NUCLEIC ACIDS RESEARCH, 1993, 21 (05) : 1117 - 1123
  • [25] Air-water interface of submerged superhydrophobic surfaces imaged by atomic force microscopy
    Moosmann, Markus
    Schimmel, Thomas
    Barthlott, Wilhelm
    Mail, Matthias
    BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2017, 8 : 1671 - 1679
  • [26] Nano-characterization of a nafion thin film in air and in water by atomic force microscopy
    Umemura, Kazuo
    Wang, Tong
    Hara, Masahiko
    Kuroda, Reiko
    Uchida, On
    Nagai, Masayuki
    PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON NANOSCIENCE AND TECHNOLOGY, 2007, 61 : 1202 - 1206
  • [27] Atomic force microscopy - Molecule by molecule control
    Eisberg, N
    CHEMISTRY & INDUSTRY, 2006, (08) : 5 - 5
  • [28] Lattice variation upon water adsorption in silica opals measured by in situ atomic force microscopy
    Gallego-Gomez, Francisco
    Berganza, Eider
    Morales, Miguel
    Blanco, Alvaro
    Lopez, Cefe
    Asenjo, Agustina
    Jaafar, Miriam
    NANOSCALE ADVANCES, 2025,
  • [29] Effect of water on lateral force microscopy in air
    Northwestern Univ, Evanston, United States
    Langmuir, 26 (6864-6868):
  • [30] Effect of water on lateral force microscopy in air
    Piner, RD
    Mirkin, CA
    LANGMUIR, 1997, 13 (26) : 6864 - 6868