Article

A facile synthesis of palladium nanoparticles supported on functional carbon nanotubes and its novel catalysis for ethanol electrooxidation.

Department of Chemistry and Key Laboratory of Analytical Sciences of the Ministry of Education, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.
Analytica chimica acta (impact factor: 4.31). 10/2009; 650(1):54-8. DOI:10.1016/j.aca.2009.02.035 pp.54-8
Source: PubMed

ABSTRACT In this study, a novel material, palladium nanoparticles-carboxylic functional carbon nanotubes (PdNPs-CFCNTs), based on PdNPs supported on CFCNTs was synthesized by a facile spontaneous redox method. The material reveals high electrochemical activity and excellent catalytic characteristic for alcohol electrooxidation on a glassy carbon electrode (GCE) in an alkaline medium. The preparation mechanism was studied by the galvanic cell effect between PdCl(4)(2-) and functional defect sites on CFCNTs. Results from UV-visible absorption spectroscopy and electrochemical impedance spectroscopy revealed that the reduction of PdCl(4)(2-) to metallic Pd was successfully achieved. Morphologies of PdNPs supporting on CFCNTs (PdNPs-CFCNTs) were also characterized by transmission electron micrograph. PdNPs-CFCNTs with the best electrocatalytic characteristics were obtained under the condition as: the weight ratio of Pd to CFCNTs was kept at 2:1, the temperature was kept at 70 degrees C in the synthesis, and the scan rate of the applied potential was selected at 60 mV s(-1). The results indicate that PdNPs-CFCNTs could be a great potential material in direct ethanol fuel cells and ethanol sensors.

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Keywords

70 degrees C
 
alkaline medium
 
applied potential
 
direct ethanol fuel cells
 
electrocatalytic characteristics
 
electrochemical activity
 
electrochemical impedance spectroscopy
 
ethanol sensors
 
excellent catalytic characteristic
 
facile spontaneous redox method
 
galvanic cell effect
 
metallic Pd
 
palladium nanoparticles-carboxylic functional carbon nanotubes
 
transmission electron micrograph
 
UV-visible absorption spectroscopy