Synthesis and Polymerization of Pyrole Characterization of Polypyrole

Similar documents
ELECTROCHEMICAL SYNTHESIS OF POLYPYRROLE (PPy) and PPy METAL COMPOSITES ON COPPER and INVESTIGATION OF THEIR ANTICORROSIVE PROPERTIES

Cu(I)-Mediating Pt Reduction to Form Pt-Nanoparticle-Embedded Nafion Composites and Their Electrocatalytic O 2 Reduction

PULSE ELECTRODEPOSITION OF Pt Co CATALYST ONTO GLASSY CARBON FOR OXYGEN REDUCTION REACTION TO USE IN PEMFC

Supporting Information. High Performance Platinized Titanium Nitride Catalyst for Methanol Oxidation

A Parametric Study on the Electrodeposition of Copper Nanocrystals on a Gold Film Electrode. Andrea Harmer Co-op term #1 April 25, 2003

Electrochemical behavior of nanodiamond electrode deposited on porous activated carbon pellet

The electrodeposition of Zn-Mo and Zn-Sn-Mo alloys from citrate electrolytes

On-chip metal/polypyrrole quasi-reference electrodes for robust ISFET operation

COMPARATIVE CORROSION BEHAVIOR OF PURE COPPER AND BRASS IN 3.5% NaCl SOLUTION

Supporting Information

ELECTROCHEMICAL REDUCTION OF TITANIUM DIOXIDE THIN FILM IN LiCl-KCl-CaCl 2 EUTECTIC MELT

Protective Behavior of Poly(m-aminophenol) and Polypyrrole Coatings on Mild Steel

Preparation of porous manganese hydroxide film and its application in supercapacitors

Study on Triazinethiol Electropolymerized Films Prepared by Cyclic Voltammetry and Galvanostatic on Copper Alloy Surface

Department of Chemistry, College of Science; 2 The Graduate School; 3

Development of Corrosion Probe based on Solid State Reference Electrodes 1 Introduction

INHERENTLY CONDUCTING POLYMERS ON ALUMINIUM ALLOY 6061-T6 BY ELECTROPOLYMERIZATION

Supporting Information for

The Corrosion Protection of Copper and Copper Alloys using an Electrodeposited Conducting Polypyrrole Coating

DEVELOPMENT OF ELECTROLESS PROCESS FOR DEPOSITION OF ZN SILICATE COATINGS

Mass Transport Effects on Electroreduction of Carbon Dioxide

Electrodeposition and Properties of ZnFeNi Alloys. Ismail Hakki Karahan

Electrochemical and AFM Study of Corrosion Inhibition with Respect to Application Method

Organic Conductor Films: Fabrication and Characterization

Studies of platinum electroplating baths Part IV: Deposits on copper from Q bath

Supplementary Figure 2. Cell configuration and definition of the parameters for the equations.

Electrodeposition of Polypyrrole Films on Aluminum Surfaces from a p-toluene Sulfonic Acid Medium

Platinum Nanostructures by Template Wetting Nanofabrication and Their Use in a Miniature Fuel Cell Membrane Electrode Assembly

Effects of preparation temperature on the conductivity of polypyrrole conducting polymer

Supporting Information

Effects of Bath Temperature on Electrodeposited Permanent Magnetic Co-Pt-W(P) Films

Applied Surface Science

A Study on the Electrodeposition of NiFe Alloy Thin Films Using Chronocoulometry and Electrochemical Quartz Crystal Microgravimetry

Membraneless Hydrogen Peroxide Micro Semi-Fuel Cell for Portable Applications

THE ELECTROLYTIC DEPOSITION OF CARBON FROM MOLTEN Li 2 CO 3

Novel electrode substrates for rechargeable lithium/polypyrrole batteries

Supporting Information

Studies on electrodeposited Zn-Fe alloy coating on mild steel and its characterization

Electrodeposition of Cu-Zn Alloy from a Lewis Acidic ZnCl 2 -EMIC Molten Salt

Corrosion Rate Measurement on C-Steel

Chapter 3. Electrocatalytic Oxidation of Glucose on Copper Oxide Modified Copper Electrode

School of Materials Science and Engineering, South China University of Technology,

Pulsed Electrodeposited Nickel Cerium for Hydrogen Production Studies 54

ELECTROCHEMISTRY OF SILICON IN CHLORO-FLUORIDE AND CARBONATE MELTS

Effects of Lead on Tin Whisker Elimination

Supporting information

Supplementary Material

Supplementary Information

Electronic Supplementary Material (ESI) for Chemical Communications This journal is The Royal Society of Chemistry 2013

N-doped Graphite Carbon Derived from Carbon Foam for Efficient Hydrogen Evolution Reaction

Nonanomalous Electrodeposition of Zinc-Iron Alloys in an Acidic Zinc Chloride-1-ethyl-3-methylimidazolium Chloride Ionic Liquid

Supplementary Figure S1 TEM images. TEM images of mesoporous polymer nanospheres (MPNs-n) synthesized with different ethanol amount.

Direct Electrodeposition of Polypyrrole on Aluminum and Aluminum Alloy by Electron Transfer Mediation

Electroactive Polymer for Controlling Overcharge in Lithium-Ion Batteries

Corrosion resistant behaviour of PANI metal bilayer coatings

Electrochemical Behaviors of PtRu/CNTs Catalysts Prepared by Pulse Potential Plating Methods

Slovak Society of Chemical Engineering Institute of Chemical and Environmental Engineering Slovak University of Technology in Bratislava PROCEEDINGS

CORROSION BEHAVIOR OF 1050 AND 3003 ALUMINUM ALLOYS USED IN NAVAL INDUSTRY

Electronic Supporting Information

Impedance Monitoring of the Anodic Dissolution of PANi during the V 2 O 5 Deposition Step for the PANi/V 2 O 5 Composite Film Preparation

and Their Electrocatalysis for Oxygen Reduction Reaction

Bipolar performance of the electroplated iron nickel deposits for water electrolysis

In Situ Studies of Passive Film Chemistry using X-ray Absorption Spectroscopy

Synthesis and Evaluation of Electrocatalysts for Fuel Cells

Electrochimica Acta 179 (2015) Contents lists available at ScienceDirect. Electrochimica Acta

- Supporting Information - Nanoporous Dual-Electrodes with Millimetre Extensions: Parallelized Fabrication & Area Effects on Redox Cycling

Inhibiting Oxidation of Cu (111)

Supporting Information. Hematite photoanode with gradient structure shows an unprecedentedly low onset

Supporting Information

Effect of Anodizing Potential on the Surface Morphology and Corrosion Property of AZ31 Magnesium Alloy

Supporting Information

Effects of Inorganic Ions for Reduction and Growth of Copper Oxides

Corrosion of copper electrode in sodium sulfide solution

Supporting Information

6th International Conference on Advanced Design and Manufacturing Engineering (ICADME 2016)

Supplementary Information

Method Excitation signal applied Wave response based on method Linear Differential pulse Square wave Cyclic Developed current recorded

Evaluating Corrosion and Passivation by Electrochemical Techniques

Electrochemistry, copper, ammonium sulphide, copper sulphides, ammonium


Supplementary Information

Electrochromic Characteristics of NiO/Au Composite Nano-rod Array Membrane

Alkaline Rechargeable Ni/Co Batteries: Cobalt Hydroxides as. Negative Electrode Materials

Electrochemical Dissolution and Passivation of Cu-Ni Alloys in Sodium Sulphate Aqueous Solution

ELECTROCHEMICAL PROPERTIES OF CoCl 2 (PPh 3 ) 2

Voltammetry of Metal Oxide Nanoparticle Films

Novel concept of rechargeable battery using iron oxide nanorods. anode and nickel hydroxide cathode in aqueous electrolyte

Corrosion behaviour of electrodeposited Zn Co Fe alloy

Supplementary Figure S1. CV curves of gold wire and seamless solid/nanoporous Au electrodes in 0.5 M H 2 SO 4 solution at a scan rate of 100 mv S -1.

Electronic Supplementary Information (ESI)

SYNTHESIS OF MANGANESE OXIDE NANOSTRUCTURES ON CARBON PAPER FOR SUPERCAPACITOR APPLICATIONS

A comparative study on electrorheological properties of various silica/conducting polymer core/shell nanospheres

Nitrogen Doped Carbon Nanomaterials as Non-metal. Electrocatalysts for Water Oxidation

Characterization of the Corrosion Scenarios on the Trans-Canada Pipeline (Alberta System)

The electropolymerization of pyrrole at a CuNi electrode: corrosion protection properties

De-ionized water. Nickel target. Supplementary Figure S1. A schematic illustration of the experimental setup.

Investigation of anode materials for lithium-ion batteries

Remarkable Reinforcement Effect in Sulfonated. Aromatic Polymers as Fuel Cell Membrane

A novel rechargeable battery with magnesium anode, titanium dioxide cathode, and magnesim borohydride/tetraglyme electrolyte

Investigation on the effect of Electro-co-deposition process parameter bath temperature on Nano Structured Ni-WC Composite coating properties

Transcription:

Leonardo Electronic Journal of Practices and Technologies ISSN 1583-1078 Issue 11, July-December 2007 p. 1-6 Synthesis and Polymerization of Pyrole Characterization of Polypyrole Moulay Abderrahim EL MHAMMEDI, Latifa KINANI and Abedelilah CHTAINI * Molecular Electrochemistry and Inorganic Materials Team, University Cadi Ayyad, Faculty of Science and Technology, Beni-Mellal, Morocco elmhammedi@yahoo.fr, latifa_kinani@yahoo.fr, chtainia@yahoo.fr ( * corresponding author) Abstract The anodic polymerization of pyrole (P) onto Iron and Copper electrodes gives a PP/Metal composite. Some attractive properties de PP/Metal composites are employed by cyclic voltammetry, potentiometry, impedance measurements and scanning electron microscopy SEM. Keywords Polymerization; Polypyrole; Iron; Copper. Introduction The considerable current interest in conducting polymer has led to a number of important applications [1-3]. Special attention is currently being given to the preparation of new conducting electrode coatings based on composite polymers [4]. It is expected that this strategy will improve the behavior of conducting polymers and will result in polymers designed for specific application. Diaz and coworkers [5] described the preparation of poly(vinyl chloride) (PVC)/polypyrole (PP) composite membranes, by electropolymerizing PP inside a PVC film on the electrode surface. Buttry and Hirai s groups [6-7] prepared poly(aniline) (PA)/ Nafion composites by electropolymerization within precast Nafion layers, while Penner and Martin [8] illustrated the advantages of Nafion-impregnated Gorotex membranes. Recent attention has focused on the preparation of charge balence composites, via the http://lejpt.academicdirect.org 1

Synthesis and Polymerization of Pyrole Characterization of Polypyrole Moulay A. EL MHAMMEDI, Latifa KINANI and Abedelilah CHTAINI electropolymerization of cationic conducting polymers in the presence of anionic polymers [9-10]. Large polyelectrolyte anions, such as poly ( Styrensulfonate) and poly (vinylsulfate) have thus been employed in connection with PP. In this report we describe a new iron/polypyrole and copper/polypyrole composites coating, prepared by the electropolymerization of PP in iron and copper alloys. Experimental Electrochemical experiments were performed with a potentiostat/galvanostat model voltalab 10 PGZ 100 assisted by master 4 electrochemecal software. All potentiels were measured vs the Ag/AgCl reference electrode. The electrochemical measurements were carried out in a three-compartment cylindrial glass cell. Prior to its modification the simples (iron and copper) were polished with a 0.05µm alumina slurry for 2min, rinsed with doubly-distilled water and sonicated in a water bath for 5 min. Results and Discussion Electrochemical polymerization of the polymers can be carried out by either potential step or potential sweep methods, using a typical coating solution 0.1M monomers in methanol (MeOH). In the cyclic voltammetric curves for the polymerization (Figs. 1and 2) respectively, in iron and copper, the anodic current is even bigger during the early reverse scan that during the forward scan, leading to a cross-over. These features indicate [11-12] that deposition of the polymer proceeds through a nucleation and growth mechanism as reported for other conducting polymers [12]. Typical cyclic Volta metric curves of polypyrole film in pure background electrolyte in iron and copper ample are shown in Figs. 1 and 2 respectively. After the initial oxidation of the polymer at 0.5 V a minor pre-peak can be observed between 0.8 and 1.2 in iron, and between -0.4 and -0.3 in copper. 2

Leonardo Electronic Journal of Practices and Technologies ISSN 1583-1078 Issue 11, July-December 2007 p. 1-6 Figure 1. Cyclic voltammogram for electrochemical polymerization of 0.1M pyrole in 0.1M NaOH, at iron electrode, at 100 mv/s, 20 cycles. Figure 2. Cyclic voltammogram for electrochemical polymerization of 0.1M pyrole in 0.1M NaOH, at copper electrode, at 100 mv/s, 30 cycles. The main peaks between 2 and 3 V for iron and between -0.2 and 0 in copper are followed by a big background current. The film is relatively stable in the bath samples (iron and copper) with repeated potential cycling. Also, the results of successively cyclic voltametry scan on the iron and copper electrodes indicated that the current peaks P 1, P 2 (Fig. 1) and P 1, P 2, P 4, P 5 (Fig. 2) of iron and copper respectively increased successively while P 2 and P 3 of iron and copper respectively decreased, and finally, all of them were unaltered. The decrease of P 2 (Fig. 1) and P 3 may attribute to the reductive product which concentrated 3

Synthesis and Polymerization of Pyrole Characterization of Polypyrole Moulay A. EL MHAMMEDI, Latifa KINANI and Abedelilah CHTAINI on the surface of electrode. And the increase of current peak P 1, P 3 (Fig. 1) and P 1, P 2, P 4, P 5 ) may be ascribed to the electroactive species that concentrated on the electrode surface and it could be easily oxidized and reduced. An impedance spectroscopy study was performed in order to confirm the results obtained by the cyclic voltammetric tests. Figs. 3 and 4. shown the impedance diagrams recorded respectively, for iron and copper with and without polymers. In the both samples (Iron and Copper), the impedance curves are in the form of half circle which can be attributed to the electron transfer step. The diameter of the circles increased considerably in iron/polymer and Copper/polymer electrodes, probably because the polymer over oxidized at such positive potentials it becomes electrochemically inactive and lead the increase of the electron transfer resistance. Figure. 3. Electrochemical Impedance Spectroscopy for iron (a) and iron/polypyrole (b) electrodes in 0.9% NaCl Figure 4. Electrochemical Impedance Spectroscopy for copper(a) and copper/polypyrole (b) electrodes in 0.9% NaCl 4

Leonardo Electronic Journal of Practices and Technologies ISSN 1583-1078 Issue 11, July-December 2007 p. 1-6 Scanning electron microscopy of copper/polymer (Fig. 5) and iron/polymer (Fig. 6) showed the regular polypyrole films. In the cross-sectional view the periodicity of the multilayer can be observed. Figure 5. Scanning electron micrograph of Polypyrole/Iron. Figure 6. Scanning electron micrograph of Polypyrole/Copper Conclusion The results presented in this article clearly demonstrate how the polymerization conditions and the type of electrode support influence the propreties of electrochemically prepared polymer modified electrode. The experiments described above indicate that significant advantages can be achieved 5

Synthesis and Polymerization of Pyrole Characterization of Polypyrole Moulay A. EL MHAMMEDI, Latifa KINANI and Abedelilah CHTAINI by anodic polymerization of pyrrole on iron and copper in an aqueous solution containing MeOH. The resulting composite electrode coating exhibits interesting proprieties in iron and copper. References 1. Stotheim T. A., (Ed.), Handbook of conducting Polymers, Marcel Dekker, New York, 1986. 2. Dang S., Wang Y., Electroanalysis, 1989, 1, p. 99. 3. Seymour R. (Ed.), Conducting Polymers, Polenum Pron, New York, 1981. 4. Diaz F., Lacrois J. C., Synthesis of electroactive/conductive polymer films: electrooxidation of heteroaromatic compounds, New J. Chem., 1988, 12, p. 171-180. 5. Depaoli M. A., Waltman R. J., Diaz A. F., Bargon J., Molecular polymer polymer compositions. Synthetic aspects, J. Chem. Soc. Chem. Commun., 1984, p. 1016-1020. 6. Ozata M., Butty O. A., Effect of gonatodropin and testotsterone treatments on prostate volume, J. Electroanal. Chem., 1988, 257, p. 71-79. 7. Hirai T., Kuwabata S., Yonegama H., Electrochemical behaviors of polypyrrole, poly-3- methylthiophene, and polyaniline deposited on nafion-coated electrodes, J. Electrochem. Soc., 1988, 135, p. 1132-1137. 8. Penner R. M., Martin C. R., Controlling the morphology of electronically conductive polymers, J. Electrochem. Soc., 1986, 133, p. 310-313. 9. Zhou O. X., Miller L. L., Valentine J. R., Manipulating and Monitoring Biomolecular Interactions with Conducting Electroactive Polymers, J. Electroanal. Chem., 1990, 261, p. 147-150. 10. Wang J., Golden T., Polishable and robust modified graphite epoxy electrodes, Anal. Chem., 1989, 61, p. 1337-1341. 11. Gunawardena G., Hille G., Montenegro I., Scharifker B., Nucleation and growth of Cu onto polycrystalline Pt electrode, J. Electroanal. Chem., 1982, 138, p. 225-228. 12. Asavapiriyanont S., Chandler G. K., Gunawardena G. A., Pletcher D., The electrodeposition of poly-n-methylpyrrole films from aqueous solutions, J. Electroanal.chem., 1984, 177, p. 245-251. 6