Supramolecular architectures and nanostructures at metal surfaces

被引:132
|
作者
Barth, JV [1 ]
Weckesser, J
Lin, N
Dmitriev, A
Kern, K
机构
[1] Ecole Polytech Fed Lausanne, Inst Phys Nanostruct, CH-1015 Lausanne, Switzerland
[2] Max Planck Inst Festkorperforsch, D-70569 Stuttgart, Germany
来源
关键词
D O I
10.1007/s00339-002-2003-6
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The controlled formation of non-covalent bonds (H-bonding, metal-ligand interactions) is the key ingredient for the fabrication of supramolecular architectures and nanostructures. Upon deposition of molecular building blocks at well-defined surfaces, this issue can be directly addressed. Scanning tunneling microscopy observations are presented, which provide insight into the interaction of functional groups on metal substrates at the molecular level. In particular, carboxylic acids were employed: (4-[(pyrid-4-yl-ethynyl)]-benzoic acid (PEBA), 4-[trans-2-(pyrid-4-yl-vinyl)]-benzoic acid (PVBA) and trimesic acid (1,3,5-benzenetricarboxylic acid, TMA), which could be stabilized in a flat geometry at the surface. By choosing the appropriate substrate material and symmetry, the sensitive balance of intermolecular and molecule-substrate interactions can be tuned to obtain well-defined supramolecular architectures and nanostructures. The head-to-tail hydrogen bonding of the related rod-like species PEBA and PVBA stabilizes molecular rows on Ag(111). The subtle difference in the molecular geometries is reflected in the lateral ordering: While 2-D islanding is encountered with PEBA, I-D nanogratings of supramolecular chiral H-bonded twin chains evolve for PVBA. The threefold symmetry of TMA in conjunction with the self-complementarity of its exodentate groups accounts for the formation of H-bonded honeycomb networks on Cu(100) at low temperatures. Metal-ligand interactions were probed with PVBA and TMA at Cu surfaces at ambient temperature. Deprotonation of the carboxyl moiety takes place, which readily interacts with Cu adatoms evaporated from step edges. This leads to a head-to-head pairing of PVBA on Cu(111) and cloverleaf-shaped Cu-TMA coordination compounds on Cu(001).
引用
收藏
页码:645 / 652
页数:8
相关论文
共 50 条
  • [1] Supramolecular architectures and nanostructures at metal surfaces
    J.V. Barth
    J. Weckesser
    N. Lin
    A. Dmitriev
    K. Kern
    Applied Physics A, 2003, 76 : 645 - 652
  • [2] Multilevel Supramolecular Architectures Self-Assembled on Metal Surfaces
    Zhong, Dingyong
    Wedeking, Katrin
    Bloemker, Tobias
    Erker, Gerhard
    Fuchs, Harald
    Chi, Lifeng
    ACS NANO, 2010, 4 (04) : 1997 - 2002
  • [3] High-Throughput Preparation of Supramolecular Nanostructures on Metal Surfaces
    Lu, Jiayi
    Jiang, Hao
    Yan, Yuyi
    Zhu, Zhiwen
    Zheng, Fengru
    Sun, Qiang
    ACS NANO, 2022, 16 (08) : 13160 - 13167
  • [4] Inorganic supramolecular architectures at surfaces
    Haga, MA
    Yutaka, T
    TRENDS IN MOLECULAR ELECTROCHEMISTRY, 2004, : 311 - 336
  • [5] Supramolecular architectures for the functionalization of solid surfaces
    Knoll, W
    Liley, M
    Piscevic, D
    Spinke, J
    Tarlov, MJ
    ADVANCES IN BIOPHYSICS, VOL 34, 1997: PROTEIN ARRAY: AN ALTERNATIVE BIOMOLECULAR SYSTEM, 1996, 34 : 231 - 251
  • [6] ToF-SIMS of metal-complex-based supramolecular architectures on oxide surfaces
    Spampinato, V.
    Vitale, S.
    Quici, S.
    Torrisi, A.
    Stepanenko, V.
    Wuerthner, F.
    Licciardello, A.
    SURFACE AND INTERFACE ANALYSIS, 2013, 45 (01) : 206 - 210
  • [8] Building supramolecular nanostructures at surfaces by hydrogen bonding
    Barth, JV
    Weckesser, J
    Cai, CZ
    Günter, P
    Bürgi, L
    Jeandupeux, O
    Kern, K
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2000, 39 (07) : 1230 - +
  • [9] Building supramolecular nanostructures on surfaces: the influence of the substrate
    Laitenberger, P
    Claessens, CG
    Kuipers, L
    Raymo, FM
    Palmer, RE
    Stoddart, JF
    CHEMICAL PHYSICS LETTERS, 1997, 279 (3-4) : 209 - 214
  • [10] Building Supramolecular Nanostructures at Surfaces by Hydrogen Bonding
    Barth, Johannes V.
    Weckesser, Jens
    Cai, Chengzhi
    Gunter, Peter
    Burgi, Lukas
    Jeandupeux, Olivier
    Kern, Klaus
    Angewandte Chemie (International Edition in English), 2000, 39 (07): : 1230 - 1234