Control of crystal nucleation by patterned self-assembled monolayers

被引:0
|
作者
Joanna Aizenberg
Andrew J. Black
George M. Whitesides
机构
[1] Bell Laboratories,Department of Chemistry and Chemical Biology
[2] Lucent Technologies,undefined
[3] Harvard University,undefined
来源
Nature | 1999年 / 398卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
An important requirement in the fabrication of advanced inorganic materials, such as ceramics and semiconductors, is control over crystallization1,2,3,4. In principle, the synthetic growth of crystals can be guided by molecular recognition at interfaces5,6,7,8,9,10,11,12,13,14,15,16. But it remains a practical challenge to control simultaneously the density and pattern of nucleation events, and the sizes and orientations of the growing crystals. Here we report a route to crystal formation, using micropatterned self-assembled monolayers17,18, which affords control over all these parameters. We begin with a metal substrate patterned with a self-assembled monolayer having areas of different nucleating activity—in this case, an array of acid-terminated regions separated by methyl-terminated regions. By immersing the patterned substrates in a calcium chloride solution and exposing them to carbon dioxide, we achieve ordered crystallization of calcite in the polar regions, where the rate of nucleation is fastest; crystallization can be completely suppressed elsewhere by a suitable choice of array spacing, which ensures that the solution is undersaturated in the methyl-terminated regions. The nucleation density (the number of crystals formed per active site) may be controlled by varying the area and distribution of the polar regions, and we can manipulate the crystallographic orientation by using different functional groups and substrates.
引用
收藏
页码:495 / 498
页数:3
相关论文
共 50 条
  • [1] Control of crystal nucleation by patterned self-assembled monolayers
    Aizenberg, J
    Black, AJ
    Whitesides, GM
    NATURE, 1999, 398 (6727) : 495 - 498
  • [2] Patterned Growth of Organic Semiconductors: Selective Nucleation of Perylene on Self-Assembled Monolayers
    Pick, Andre
    Witte, Gregor
    LANGMUIR, 2016, 32 (32) : 8019 - 8028
  • [3] PATTERNED SELF-ASSEMBLED MONOLAYERS AND MESOSCALE PHENOMENA
    KUMAR, A
    ABBOTT, NL
    KIM, E
    BIEBUYCK, HA
    WHITESIDES, GM
    ACCOUNTS OF CHEMICAL RESEARCH, 1995, 28 (05) : 219 - 226
  • [4] Crystal growth on self-assembled monolayers
    Singh, Aniruddh
    Lee, In Sung
    Kim, Kitae
    Myerson, Allan S.
    CRYSTENGCOMM, 2011, 13 (01): : 24 - 32
  • [5] Cation sensing by patterned self-assembled monolayers on gold
    Flink, S
    Schönherr, H
    Vancso, GJ
    Geurts, FAJ
    van Leerdam, KGC
    van Veggel, FCJM
    Reinhoudt, DN
    JOURNAL OF THE CHEMICAL SOCIETY-PERKIN TRANSACTIONS 2, 2000, (10): : 2141 - 2146
  • [6] Manipulating OLEDs using patterned self-assembled monolayers
    不详
    ADVANCED MATERIALS, 2008, 20 (15) : A1 - A1
  • [7] Electrochemical deposition of polypyrrole on patterned self-assembled monolayers
    Li, XH
    Zhang, XG
    Sun, QY
    Lü, WG
    Li, HL
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2000, 492 (01): : 23 - 30
  • [8] Neurite outgrowths of neurons on patterned self-assembled monolayers
    Naka, Y
    Eda, A
    Takei, H
    Shimizu, N
    JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2002, 94 (05) : 434 - 439
  • [9] Surface plasmon resonance imaging of liquid crystal anchoring on patterned self-assembled monolayers
    Evans, SD
    Allinson, H
    Boden, N
    Flynn, TM
    Henderson, JR
    JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (12): : 2143 - 2148
  • [10] Thermodynamics of epitaxial calcite nucleation on self-assembled monolayers
    Travaille, AM
    Steijven, EGA
    Meekes, H
    van Kempen, H
    JOURNAL OF PHYSICAL CHEMISTRY B, 2005, 109 (12): : 5618 - 5626