Transferring and Retaining of Different Polyaniline Nanofeatures via Electrophoretic Deposition for Enhanced Sensing Performance

Author:

Ji Zhanyou123,Zhai Bingyan12,Wang Nana12,He Yinkun12,Wang Huidi4,Fei Guiqiang12,Wang Caiyun5,Zhang Guohong6,Shao Liang123ORCID

Affiliation:

1. College of Chemistry and Chemical Engineering Shaanxi Key Laboratory of Chemical Additives for Industry Shaanxi University of Science and Technology Xi'an Shaanxi 710021 P. R. China

2. Key Laboratory of Auxiliary Chemistry and Technology for Chemical Industry Ministry of Education Shaanxi University of Science and Technology Xi'an 710021 P. R. China

3. Xi'an Key Laboratory of Green Chemicals and Functional Materials Shaanxi University of Science and Technology Xi'an 710021 China

4. College of Materials Science and Engineering Shaanxi University of Science and Technology Xi'an 710021 P. R. China

5. Intelligent Polymer Research Institute ARC Centre of Excellence for Electromaterials Science AIIM Facility Innovation Campus University of Wollongong North Wollongong NSW 2500 Australia

6. Department of Machine Engineering Faculty of Systems Science and Technology Akita Prefectural University Yurihonjo city Akita 015–0055 Japan

Abstract

AbstractNanofeatured polyaniline (PANI) electrodes have demonstrated impressive sensing performance due to the enhanced electrolyte diffusion and ion transport. However, the retaining of these nanostructures on substrates via electrophoretic deposition (EPD) faces an insurmountable challenge from the involved dedoping process. Here, camphorsulfonic acid is utilized with high steric effects to dope PANI (PANI‐CSA) that can be directly used EPD without involving a dedoping process. Five different nanofeatures (sea cucumber‐like, nanofiber, amorphous, nanotube, and nanorod) are synthesized, and they have been all successfully transferred onto indium tin oxide substrate in a formic acid/acetonitrile system, namely a morphology memory effect. The mechanism of retaining these nanofeatures is revealed, which is realized via the processes of dissolution of PANI‐CSA, codoping and solvation, and reassembly of basic units into the original nanofeature. The enhanced protonation level by the codoping of formic acid and solvation of acetonitrile plays the key role in retaining these nanofeatures. This method is also applicable to transfer PANI/gold nanorod composites (PANI‐CSA/AuNRs). The PANI‐CSA/AuNRs electrode as an ascorbic acid sensor has shown an excellent sensing performance with a sensitivity up to 872.7 µA mm−1 cm−2 and a detection limit of as low as 0.18 × 10−6 m.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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