Supramolecular Self-Assembly and Radical Kinetics in Conducting Self-Replicating Nanowires

被引:56
|
作者
Nyrkova, Irina [1 ]
Moulin, Emilie [1 ]
Armao, Joseph J. [1 ]
Maaloum, Mounir [1 ]
Heinrich, Benoit [3 ]
Rawiso, Michel [1 ]
Niess, Frederic [1 ]
Cid, Juan-Jose [1 ]
Jouault, Nicolas [2 ]
Buhler, Eric [2 ]
Semenov, Alexander N. [1 ]
Giuseppone, Nicolas [1 ,4 ]
机构
[1] CNRS, Inst Charles Sadron, F-67034 Strasbourg 2, France
[2] Univ Paris 08, MSC Lab, F-75205 Paris 13, France
[3] Inst Phys & Chim Mat Strasbourg, F-67034 Strasbourg 2, France
[4] Univ Strasbourg, Dept Chem, F-67000 Strasbourg, France
基金
欧洲研究理事会;
关键词
supramolecular polymers; fibrils; self-replication; triarylamines; light-triggered self-assembly; COMPLEX MATTER; LIGHT; MICELLIZATION; CHEMISTRY; SYSTEMS; CONSTRUCTION; PEPTIDES; POLYMERS;
D O I
10.1021/nn502863b
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
By using a combination of experimental and theoretical tools, we elucidate unique physical characteristics of supramolecular triarylamine nanowires (STANWs), their packed structure, as well as the entire kinetics of the associated radical-controlled supramolecular polymerization process. AFM, small-angle X-ray scattering, and all-atomic computer modeling reveal the two-columnar "snowflake" internal structure of the fibers involving the p-stacking of triarylamines with alternating handedness. The polymerization process and the kinetics of triarylammonium radicals formation and decay are studied by UV-vis spectroscopy, nuclear magnetic resonance and electronic paramagnetic resonance. We fully describe these experimental data with theoretical models demonstrating that the supramolecular self-assembly starts by the production of radicals that are required for nucleation of double-columnar fibrils followed by their growth in double-strand filaments. We also elucidate nontrivial kinetics of this self-assembly process revealing sigmoid time dependency and complex self-replicating behavior. The hierarchical approach and other ideas proposed here provide a general tool to study kinetics in a large number of self-assembling fibrillar systems.
引用
收藏
页码:10111 / 10124
页数:14
相关论文
共 50 条
  • [41] Diversification of self-replicating molecules
    Sadownik, Jan W.
    Mattia, Elio
    Nowak, Piotr
    Otto, Sijbren
    NATURE CHEMISTRY, 2016, 8 (03) : 264 - 269
  • [42] Are Self-Replicating Machines Feasible?
    Ellery, Alex
    JOURNAL OF SPACECRAFT AND ROCKETS, 2016, 53 (02) : 317 - 327
  • [43] A self-replicating ligase ribozyme
    Paul, N
    Joyce, GF
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (20) : 12733 - 12740
  • [44] The self-assembly of metallic nanowires
    Schoiswohl, J.
    Mittendorfer, F.
    Surnev, S.
    Ramsey, M. G.
    Andersen, J. N.
    Netzer, F. P.
    SURFACE SCIENCE, 2006, 600 (20) : L274 - L280
  • [45] Numbering self-replicating polymers
    Monteiro, LHA
    Piqueira, JRC
    JOURNAL OF THEORETICAL BIOLOGY, 1998, 193 (02) : 365 - 367
  • [46] SELF-REPLICATING STRUCTURES IN WATER
    SPEEDY, RJ
    JOURNAL OF PHYSICAL CHEMISTRY, 1984, 88 (15): : 3364 - 3373
  • [47] Self-replicating loops: a survey
    Tempesti, Gianluca
    INTERNATIONAL JOURNAL OF GENERAL SYSTEMS, 2012, 41 (06) : 633 - 643
  • [48] Toward self-replicating robots
    Chirikjian, GS
    Suthakorn, J
    EXPERIMENTAL ROBOTICS VIII, 2003, 5 : 392 - 401
  • [49] Patentability of Self-Replicating Technologies
    Shear, Richard H.
    COLD SPRING HARBOR PERSPECTIVES IN MEDICINE, 2015, 5 (01):
  • [50] MINIMAL SELF-REPLICATING SYSTEMS
    VONKIEDROWSKI, G
    BERICHTE DER BUNSEN-GESELLSCHAFT-PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 1994, 98 (09): : 1112 - 1112