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Kinetics of Anion Transfer across the Liquid | Liquid Interface of a Thin Organic Film Modified Electrode, Studied by Means of Square-Wave Voltammetry
- Source :
- Analytical Chemistry, Analytical Chemistry, American Chemical Society, 2005, 77 (7), pp.1940-1949. ⟨10.1021/ac049117m⟩
- Publication Year :
- 2005
- Publisher :
- American Chemical Society (ACS), 2005.
-
Abstract
- cited By 44; International audience; The electrochemical oxidation of lutetium bis(tetra-tert- butylphthalocyaninato) (LBPC) and decamethylferrocene (DMFC), as well as the reduction of LBPC, lutetium bis(phthalocyaninato) (LPC), and lutetium (tetra-tert-butylphthalocyaninato hexadecachlorphthalocyaninato) (LB-PCl), has been studied in a thin nitrobenzene (NB) film deposited on the surface of a graphite electrode (GE) by means of square-wave voltammetry (SWV). The organic film-modified electrode was immersed in an aqueous (W) electrolyte solution and used in a conventional three-electrode configuration. When the aqueous phase contains ClO4-, NO3-, or Cl - (ClO4-, or NO3- only, in the case of DMFC), both LBPC and DMFC are oxidized to stable monovalent cations in the organic phase. The electron transfer at the GE | NB interface is accompanied by a simultaneous anion transfer across the W | NB interface to preserve the electroneutrality of the organic phase. LBPC, LPC, and LBPCl are reduced to stable monovalent anions accompanied by expulsion of the anion of the electrolyte from the organic into the aqueous phase. In all cases, the overall electrochemical process comprises simultaneous electron and ion transfer across two separate interfaces. Under conditions of SWV, the overall electrochemical process is quasireversible, exhibiting a well-formed "quasireversible maximum" that is an intrinsic property of electrode reactions occurring in a limiting diffusion space. For all the redox compounds that have been studied, the kinetics of the overall electrochemical process is controlled by the rate of the ion transfer across the liquid | liquid interface. Based on the quasireversible maximum, a novel and simple methodology for measuring the rate of ion transfer across the liquid liquid interface is proposed. A theoretical background explaining the role of the ion-transfer kinetics on the overall electrochemical process at the thin organic film modified electrode under conditions of SWV is presented. Comparing the positions of the theoretical and experimental quasireversible maximums, the kinetics of ClO4 -, NO3-, and Cl- across the W | NB interface was estimated. The kinetics of the overall process at the thin organic film modified electrode, represented by the second-order standard rate constant, is 91 ± 8, 90 ± 4, and 133 ± 10 cm4 s-1 mol-1, for the transfer of ClO4 -, NO3-, and Cl- respectively. © 2005 American Chemical Society.
- Subjects :
- immersion
Diffusion in liquids
Rate constants
Analytical chemistry
electrolyte
02 engineering and technology
Electrolyte
Lutetium
cyanic acid
Electrochemistry
7. Clean energy
01 natural sciences
Analytical Chemistry
Decamethylferrocene
ion transport
Electrolytes
covalent bond
chemistry.chemical_compound
reduction kinetics
Phase (matter)
electricity
electron transport
Redox reactions
diffusion coefficient
Lutetium compounds
Voltammetry
analytic method
Aqueous solution
Chemistry
oxidation kinetics
ferrocene
article
standard
square wave voltammetry
anion
Equipment Design
021001 nanoscience & nanotechnology
unclassified drug
Positive ions
Electrode
Graphite
Aqueous phase
chemical modification
0210 nano-technology
Oxidation-Reduction
Anions
organic compound
Surface Properties
Thin films
film
010402 general chemistry
Electron transfer
nitrate
Oxidation
[CHIM]Chemical Sciences
liquid
Electrodes
Nitrobenzenes
decane
electrode
Electron transitions
cation
0104 chemical sciences
Electrochemical electrodes
carbene
Kinetics
Anion transfer
decamethylferrocene
electrochemistry
phase transition
potentiometry
13. Climate action
molecular interaction
chlorate
nitrobenzene
aqueous solution
oxidation reduction reaction
Liquid interface
Subjects
Details
- ISSN :
- 15206882 and 00032700
- Volume :
- 77
- Database :
- OpenAIRE
- Journal :
- Analytical Chemistry
- Accession number :
- edsair.doi.dedup.....9edfe03d6bfc51a563003b138f978b25