WETTING CHARACTERISTICS OF LIQUID-DROPS AT HETEROGENEOUS SURFACES

被引:114
|
作者
DRELICH, J
MILLER, JD
KUMAR, A
WHITESIDES, GM
机构
[1] UNIV UTAH,DEPT MET ENGN,SALT LAKE CITY,UT 84112
[2] HARVARD UNIV,DEPT CHEM,CAMBRIDGE,MA 02138
关键词
CONTACT ANGLE; GOLD; LINE TENSION; THIOL; WETTABILITY;
D O I
10.1016/0927-7757(94)02940-7
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
Well-defined heterogeneous surfaces consisting of hydrophobic and hydrophilic regions were prepared on gold (a 2000 Angstrom gold him supported on an Si/SiO2/Ti substrate) by patterning self-assembled monolayers (SAMs), using an elastomer stamp. One surface was composed of alternating and parallel hydrophobic (2.5 Irm) and hydrophilic (3 mu m) strips, and the second surface consisted of alternating hydrophilic squares (3 mu m x 3 Irm) separated by hydrophobic strips (2.5 mu m). The wetting characteristics of these well-defined heterogeneous solid surfaces were examined by contact angle measurements. The contact angles for water drops, which varied in pH from 5.8 to 10.0, were measured with the strips both tangential to and normal to the three-phase contact line. The experimental contact angles are in good agreement with theory as calculated from the Cassie equation when the three-phase contact line is non-contorted (i.e. the three-phase contact line is situated along the hydrophobic strip). On the other hand, when the strips are normal to the drop edge, corrugation of the three-phase contact line affects the contact angle significantly. Contact angles, measured with the strips normal to the drop edge, were lower by 7-16 degrees than those calculated from the Cassie equation. Analysis of these measurements, together with contact angle/drop size measurements for fully hydrophobic and hydrophilic surfaces, demonstrate the validity of a modified Cassie equation that includes a term describing the line tension contribution.
引用
收藏
页码:1 / 13
页数:13
相关论文
共 50 条
  • [11] SPREADING OF LIQUID-DROPS ON FIBERS
    BROCHARDWYART, F
    DIMEGLIO, JM
    ANNALI DI CHIMICA, 1987, 77 (3-4) : 275 - 283
  • [12] COLLISIONS BETWEEN LIQUID-DROPS
    BRADLEY, SG
    STOW, CD
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1978, 287 (1349): : 635 - 678
  • [13] MECHANICS OF LIQUID-DROPS IN AIR
    SRIKRISHNA, M
    SIVAJI, K
    NARASIMHAMURTY, GSR
    CHEMICAL ENGINEERING JOURNAL AND THE BIOCHEMICAL ENGINEERING JOURNAL, 1982, 24 (01): : 27 - 34
  • [14] CAPILLARY SPREADING OF LIQUID-DROPS
    HOCKING, L
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1978, 23 (08): : 1012 - 1012
  • [15] GROWTH-RATES FOR LIQUID-DROPS
    BARRETT, JC
    CLEMENT, CF
    JOURNAL OF AEROSOL SCIENCE, 1988, 19 (02) : 223 - 242
  • [16] Capillary Surfaces Modeling Liquid Drops on Wetting Phenomena
    Lopez, Rafael
    ROLE AND IMPORTANCE OF MATHEMATICS IN INNOVATION, 2017, 25 : 127 - 141
  • [17] SECRETION OF LIQUID-DROPS BY GUARD CELLS
    KUBICHEK, SA
    SOVIET PLANT PHYSIOLOGY, 1976, 23 (02): : 346 - 347
  • [18] QUASIMOLECULAR SIMULATION OF LARGE LIQUID-DROPS
    GREENSPAN, D
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1989, 22 (09) : 1415 - 1417
  • [19] VELOCITIES OF LIQUID-DROPS IN GAS STREAMS
    MALOFEEV, NA
    MALYUSOV, VA
    MAKSIMOV, VV
    PODGORNAYA, IV
    JOURNAL OF APPLIED CHEMISTRY OF THE USSR, 1981, 54 (02): : 330 - 332
  • [20] FORMATION OF LIQUID-DROPS BY COMPRESSIONAL VIBRATIONS
    WALZEL, P
    CHEMIE INGENIEUR TECHNIK, 1979, 51 (05) : 525 - 525