RELATIONSHIP BETWEEN ELECTRONIC TUNNELING COEFFICIENT AND ELECTRODE POTENTIAL INVESTIGATED USING SELF-ASSEMBLED ALKANETHIOL MONOLAYERS ON GOLD ELECTRODES

被引:98
|
作者
XU, J [1 ]
LI, HL [1 ]
ZHANG, Y [1 ]
机构
[1] LANZHOU UNIV,DEPT CHEM,LANZHOU 730000,PEOPLES R CHINA
来源
JOURNAL OF PHYSICAL CHEMISTRY | 1993年 / 97卷 / 44期
关键词
D O I
10.1021/j100146a025
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
We investigated the relationship between the electronic tunneling coefficient and the electrode potential. Monolayers of saturated long-chain alkanethiols, SH(CH2)NCH3 (n = 11, 13,15,17), were self-assembled from acetonitrile solutions onto gold electrodes. The closely packed and ordered monolayers were insulating and diminished the rate of electron transfer at the modified gold surface. The rate of electron transfer was the rate-limiting step in the overall electrode reaction pathway. The electronic tunneling coefficient was calculated by varing the thickness of the insulating layer (changing the number of carbon atoms in long-chain thiol) and measuring the change in the heterogeneous electron-transfer rate of the selected redox couple at a given potential. To get a more precise measure of the tunneling coefficient, the observed current was corrected using convolution techniques for diffusional depletion of the surface concentrations of both the oxidized and reduced forms of the redox probe. The electronic tunneling coefficient was determined to be 1.02 +/- 0.20 per methylene unit in the long-chain alkanethiol with the Fe(CN)63-/Fe(CN)64- redox couple. This same value was obtained when the Fe3+/Fe2+ redox couple was used. Least-squares analysis of the data showed that the electronic tunneling coefficient was nearly independent of the electrode potential but may be dependent upon the functional group at the long-chain alkanethiol terminus.
引用
收藏
页码:11497 / 11500
页数:4
相关论文
共 50 条
  • [21] THE CHEMISTRY OF SELF-ASSEMBLED LONG-CHAIN ALKANETHIOL MONOLAYERS ON GOLD
    XU, J
    LI, HL
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1995, 176 (01) : 138 - 149
  • [22] Forming microstructured alkanethiol self-assembled monolayers on gold by laser ablation
    Rhinow, Daniel
    Hampp, Norbert A.
    IEEE TRANSACTIONS ON NANOBIOSCIENCE, 2006, 5 (03) : 188 - 192
  • [23] Characterization of Alkanethiol Self-Assembled Monolayers on Gold by Thermal Desorption Spectroscopy
    Stettner, Johanna
    Winkler, Adolf
    LANGMUIR, 2010, 26 (12) : 9659 - 9665
  • [24] Concentration effects of porphyrin monolayers on the structure and photoelectrochemical properties of mixed self-assembled monolayers of porphyrin and alkanethiol on gold electrodes
    Imahori, H
    Hasobe, T
    Yamada, H
    Nishimura, Y
    Yamazaki, I
    Fukuzumi, S
    LANGMUIR, 2001, 17 (16) : 4925 - 4931
  • [26] Variation of Surface Potential of Alkanethiol Self-Assembled Monolayers with Different Chain Lengths on a Gold Substrate
    Gao Yuan
    Xu Guo-Hua
    An Yue
    ACTA PHYSICO-CHIMICA SINICA, 2010, 26 (08) : 2211 - 2216
  • [27] Comparison of electronic transport characterization methods for alkanethiol self-assembled monolayers
    Lee, T
    Wang, WY
    Klemic, JF
    Zhang, JJ
    Su, J
    Reed, MA
    JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (25): : 8742 - 8750
  • [28] Characterization of self-assembled alkanethiol monolayers using a low-current scanning tunneling microscope
    Wang, DW
    Tian, F
    Lu, JG
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY B, 2002, 20 (01): : 60 - 64
  • [29] INTERFACIAL BUFFER EFFECT OF SELF-ASSEMBLED MONOLAYERS OF A CARBOXYLIC-ACID TERMINATED ALKANETHIOL ON A GOLD ELECTRODE
    KUNITAKE, M
    DEGUCHI, Y
    KAWATANA, K
    MANABE, O
    NAKASHIMA, N
    JOURNAL OF THE CHEMICAL SOCIETY-CHEMICAL COMMUNICATIONS, 1994, (05) : 563 - 564
  • [30] Blocking behavior of self-assembled monolayers on gold electrodes
    Hong Shen
    James E. Mark
    Carl J. Seliskar
    Harry B. Mark Jr.
    William R. Heineman
    Journal of Solid State Electrochemistry, 1997, 1 : 148 - 154