Fabricating electroactive azobenzene self-assembled monolayers and their characterization
暂无分享,去创建一个
Hua-Zhong Yu | Akira Fujishima | Shengmin Cai | Hiroo Inokuchi | A. Fujishima | Hua-Zhong Yu | S. Cai | H. Inokuchi | Zhongfan Liu | Zhongfan Liu | Yong-Qiang Wang | Ji-Zhi Cheng | Jian-Wei Zhao | Yong-qiang Wang | Ji-Zhi Cheng | Jian-Wei Zhao
[1] E. Laviron. The use of polarography and cyclic voltammetry for the study of redox systems with adsorption of the reactants. Heterogeneous vs. surface path , 1995 .
[2] Yukari Sato,et al. Adsorption behavior of functionalized ferrocenylalkane thiols and disulfide onto Au and ITO and electrochemical properties of modified electrodes: Effects of acyl and alkyl groups attached to the ferrocene ring , 1995 .
[3] H. Ringsdorf,et al. Structural investigation of molecular organization in self-assembled monolayers of a semifluorinated amidethiol , 1994 .
[4] H. Finklea,et al. Kinetics of electron transfer to attached redox centers on gold electrodes in nonaqueous electrolytes , 1994 .
[5] Chad A. Mirkin,et al. Self-Assembled Monolayers of Ferrocenylazobenzenes: Monolayer Structure vs Response , 1994 .
[6] D. Buttry,et al. Environmental Effects on Redox Potentials of Viologen Groups Embedded in Electroactive Self-Assembled Monolayers. , 1992 .
[7] Harry O. Finklea,et al. Electron-transfer kinetics in organized thiol monolayers with attached pentaammine(pyridine)ruthenium redox centers , 1992 .
[8] Akira Fujishima,et al. Difference between the electrochemical reductivities of trans and cis isomers of an azo compound in the assembled monolayer film , 1992 .
[9] Héctor D. Abruña,et al. Electron-transfer study and solvent effects on the formal potential of a redox-active self-assembling monolayer , 1991 .
[10] A. Ulman,et al. Ultrathin organic films: From Langmuir-Blodgett to self assembly , 1991 .
[11] G M Whitesides,et al. Molecular Self-Assembly of Two-Terminal, Voltammetric Microsensors with Internal References , 1991, Science.
[12] C. Chidsey,et al. Free Energy and Temperature Dependence of Electron Transfer at the Metal-Electrolyte Interface , 1991, Science.
[13] A. Fujishima,et al. A novel photoelectrochemical hybrid “one-way” process observed in the azobenzene system , 1991 .
[14] Eugenii Katz,et al. A chemically modified electrode capable of a spontaneous immobilization of amino compounds due to its functionalization with succinimidyl groups , 1990 .
[15] Carolyn R. Bertozzi,et al. Coadsorption of ferrocene-terminated and unsubstituted alkanethiols on gold: electroactive self-assembled monolayers , 1990 .
[16] K. A. Lee. Electron transfer into self-assembling monolayers on gold electrodes , 1990 .
[17] E. Laviron. Electrochemical reactions with protonations at equilibrium: Part VIII. The 2 e, 2H+ reaction (nine-member square scheme) for a surface or for a heterogeneous reaction in the absence of disproportionation and dimerization reactions , 1983 .
[18] E. Laviron,et al. Voltammetric behaviour of electrodes modified by a thick coating of a monomer , 1982 .
[19] E. Laviron,et al. A study of the surface and volume electroreduction of cis- and trans-azobenzene in protic media , 1980 .
[20] E. Laviron. General expression of the linear potential sweep voltammogram in the case of diffusionless electrochemical systems , 1979 .
[21] E. Laviron,et al. Adsorption, autoinhibition and autocatalysis in polarography and in linear potential sweep voltammetry , 1974 .
[22] E. Laviron. Influence of the adsorption of the depolarizer or of a product of the electrochemical reaction on polarographic currents: XIX. A study of the kinetics of the benzidine rearrangement on the surface of a mercury electrode , 1973 .
[23] R. H. Wopschall,et al. Adsorption effects in stationary electrode polarography with a chemical reaction following charge transfer , 1967 .
[24] H. Finklea,et al. Electrolyte and temperature effects on long range electron transfer across self-assembled monolayers , 1993 .