Controlling local disorder in self-assembled monolayers by patterning the topography of their metallic supports

被引:0
|
作者
Joanna Aizenberg
Andrew J. Black
George M. Whitesides
机构
[1] Harvard University,Department of Chemistry and Chemical Biology
来源
Nature | 1998年 / 394卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Micropatterning is a powerful method for controlling surface properties, with applications from cell biology to electronics1,2,3,4,5,6,7,8. Self-assembled monolayers (SAMs) of alkanethiolates on gold and silver9,10,11—the structures most widely used for preparing organic films with specific surface properties—are usually patterned by partitioning the surface into regions formed from different thiols12,13,14,15. Here we describe a way to pattern SAMs using a single alkanethiol on substrates consisting of regions of different topography: planar islands of one metal on the surface of a second (which may be different from or the same as the first). These topographically patterned SAMs consist of three regions: two planar surfaces and a transition region between the two. The characters of the SAMs on these three regions were inferred from images of three structures that form on them: condensation figures, patterns of crystals of CaCO3 and regions of selective etching. The transition region is more active in the processes generating these structures than either of the two planar regions, and we propose that this activity is due to the relatively high disorder in the organic film there. We believe that this ability to control the local disorder in a SAM with high resolution will be important in controlling processes such as nucleation, wetting, adhesion and etching on scales of below 50 nm to 5 µm.
引用
收藏
页码:868 / 871
页数:3
相关论文
共 50 条
  • [31] Actinide sequestration using self-assembled monolayers on mesoporous supports
    Fryxell, GE
    Lin, YH
    Fiskum, S
    Birnbaum, JC
    Wu, H
    Kemner, K
    Kelly, S
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2005, 39 (05) : 1324 - 1331
  • [32] Anion binding in self-assembled monolayers in mesoporous supports (SAMMS)
    Mattigod, Shas V.
    Fryxell, Glen E.
    Parker, Kent E.
    INORGANIC CHEMISTRY COMMUNICATIONS, 2007, 10 (06) : 646 - 648
  • [33] Environmental applications of self-assembled monolayers on mesoporous supports (SAMMS)
    Fryxell, GE
    Lin, YH
    Wu, H
    Kemner, KM
    NANOPOROUS MATERIALS III, 2002, 141 : 583 - 590
  • [34] Self-Assembled Patterning of Ultrathin Silicides by Local Oxidation
    S. Mantl
    Q. T. Zhao
    B. Kabius
    MRS Bulletin, 1999, 24 : 31 - 35
  • [35] Self-assembled patterning of ultrathin silicides by local oxidation
    Mantl, S
    Zhao, QT
    Kabius, B
    MRS BULLETIN, 1999, 24 (08) : 31 - 35
  • [36] SELF-ASSEMBLED MONOLAYERS
    WHITESIDES, GM
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1992, 204 : 72 - COLL
  • [37] Local Modification of Self-Assembled Monolayers by a Photocatalytic Probe
    Tzeng, Shien-Der
    Chiang, Chun-Huang
    Chien, Forest S. -S.
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2010, 10 (07) : 4495 - 4499
  • [38] Nanoscale patterning of self-assembled monolayers by e-beam lithography
    Weimann, T
    Geyer, W
    Hinze, P
    Stadler, V
    Eck, W
    Gölzhäuser, A
    MICROELECTRONIC ENGINEERING, 2001, 57-8 : 903 - 907
  • [39] A photochemical method for patterning the immobilization of ligands and cells to self-assembled monolayers
    Dillmore, WS
    Yousaf, MN
    Mrksich, M
    LANGMUIR, 2004, 20 (17) : 7223 - 7231
  • [40] Nanoscale patterning of self-assembled monolayers using DNA nanostructure templates
    Surwade, S. P.
    Zhou, F.
    Li, Z.
    Powell, A.
    O'Donnell, C.
    Liu, H.
    CHEMICAL COMMUNICATIONS, 2016, 52 (08) : 1677 - 1680