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  4. Template-free synthesis of an electroactive Au-Calix-PPY nanocomposite for electrochemical sensor applications
 
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Template-free synthesis of an electroactive Au-Calix-PPY nanocomposite for electrochemical sensor applications

Resource
GREEN CHEMISTRY, 14(3), 799-808
Journal
Green Chemistry
Journal Volume
14
Journal Issue
3
Pages
799
End Page
808
ISSN
1463-9262
Date Issued
2012-02-08
Date
2012
Author(s)
Shivani Tanwar
Min-Chieh Chuang
K. Sudhakara Prasad
JA-AN ANNIE HO  
DOI
10.1039/c2gc16232f
URI
http://ntur.lib.ntu.edu.tw//handle/246246/243078
http://ntur.lib.ntu.edu.tw/bitstream/246246/243078/-1/41.pdf
https://www.scopus.com/pages/publications/84857865612?origin=resultslist
Abstract
A simple green approach to the template-free synthesis of a nanocomposite material accompanied with a simultaneous redox reaction is described herein. Gold (21.35%) and polypyrrole doped with 4-sulfocalix[4]arene consist in the as-obtained nanobeads with a uniform size in the range of 30 to 50 nm. Universal solvent (water) was selected for the synthesis, allowing the formation of the nanocomposite when the fast addition of the above three components takes place one after the other. The effects of reaction time, temperature, and the concentrations of the dopant, 4-sulfocalix[4]arene and gold on the synthesis of the nanocomposite were also investigated. The current work focuses on the highly electroactive nanocomposite which can be synthesized in the absence of an external additive/template; and from the green chemistry approach, where HAuCl4 serves as an oxidizing agent as well as a stabilizer for the polymer, which makes the synthesis more constructive to avoid the use of hazardous organic solvents. For comparison, we also synthesized polypyrrole (PPY) doped with 4-sulfocalix[4]arene (Calix-PPY), but the synthesis was carried out in the presence of the oxidizing agent (ammonium persulfate), that endorses polymerization of the pyrrole. The Au-Calix-PPY modified electrodes have long-time stability for sensing formaldehyde and glucose. The materials synthesized herein were characterized by UV-visible spectroscopy, FT-IR spectroscopy, Raman spectroscopy, scanning electron microscopy (SEM), transmission electron microscopy (TEM), dynamic light scattering (DLS), energy-dispersive X-ray spectroscopy (EDX) and X-ray photoelectron spectroscopy (XPS). It was revealed that the resulting Au-Calix-PPY nanocomposite exhibits significant electrochemical activity and is successfully demonstrated in sensing formaldehyde and glucose, respectively.
SDGs

[SDGs]SDG6

Publisher
Royal Society of Chemistry
Type
journal article
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41.pdf

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23.22 KB

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Adobe PDF

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(MD5):fb69cdae9e06506f7303e62363ce31dc

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