Facile fabrication of polyaniline films with hierarchical porous networks for enhanced electrochemical activity

Ji Hye Kim, Ju Hee So, Sung Kon Kim, Hyunsik Yoon, Jonghoon Choi, Hyung Jun Koo

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

This paper describes a facile method for fabricating polyaniline (PANI) films with well-defined three-dimensional (3D) porous networks and improved electrochemical activity. The PANI hydrogel pastes with different compositions are directly cast into thin films by the doctor blade technique. After a dehydration step, the conductivity of the PANI drastically increases, while the porous structure with hierarchical macro- and meso-porosity is formed in the PANI film. The electrical conductivity tends to increase with the thickness of the porous PANI film until it fails to form a mechanically stable film not exhibiting cracking problems. We found that the amount of the initiator, the aniline monomer, and the crosslinker significantly affect not only the micro-morphology of PANI films, but also their electrical and electrochemical characteristics. Importantly, when the amounts of the crosslinker and the initiator increase, the polymer film forms with a dense internal morphology with smaller pores. Based on the engineered synthesis composition, we demonstrate a supercapacitor with porous PANI electrodes. Due to the hierarchical porous structure, large surface area and the improved conductivity, the resulting devices show excellent volumetric capacitances, which are comparable to or much higher than those previously reported.

Original languageEnglish
Pages (from-to)81-89
Number of pages9
JournalJournal of Industrial and Engineering Chemistry
Volume86
DOIs
StatePublished - 25 Jun 2020

Keywords

  • Doctor-blade technique
  • Electrochemical capacitors
  • Hierarchical porous networks
  • Hydrogel paste
  • Polyaniline

Fingerprint

Dive into the research topics of 'Facile fabrication of polyaniline films with hierarchical porous networks for enhanced electrochemical activity'. Together they form a unique fingerprint.

Cite this