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Data on enhanced wireless cell stimulation using soft and improved bipolar electroactive conducting polymer

Chunyan Qin1, Zhilian Yue1, Xu-Feng Huang2

  • 1ARC Centre of Excellence for Electromaterials Science, Intelligent Polymer Research Institute, , Australian Institute for Innovative Materials, Innovation Campus, University of Wollongong, Squires Way, North Wollongong, NSW 2519, Australia.

Data in Brief
|July 5, 2022
PubMed
Summary

This study presents data on modified conducting polymers for bipolar electrochemistry, aiding wireless cell stimulation. The findings support the development of advanced electroactive polymer templates for improved biomedical applications.

Keywords:
Bipolar electrostimulationCell stimulationImproved bipolar electroactivitySoft conducting polymerWireless

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Biomedical Engineering

Background:

  • Conducting polymers are crucial for electrochemical applications.
  • Bipolar electrochemistry offers advantages for controlled stimulation.
  • Developing advanced materials for wireless cell stimulation is an ongoing challenge.

Purpose of the Study:

  • To present comprehensive electrochemical and in situ spectrometry data for modified conducting polymers (PPy-PMAS/FTO, PPy-PMAS-collagen/FTO, PPy-PMAS-DS-collagen/FTO).
  • To supplement and compare data from conventional and bipolar electrochemical processes.
  • To provide a complete dataset for modeling soft and improved bipolar electroactive conducting polymers for wireless cell stimulation.

Main Methods:

  • Conventional and bipolar electrochemical processes.
  • In situ spectrometry for real-time analysis.
  • Data analysis using Origin 2019b 64Bit software.
  • Fabrication of polypyrrole-based composite materials.

Main Results:

  • Characterization of PPy-PMAS/FTO, PPy-PMAS-collagen/FTO, and PPy-PMAS-DS-collagen/FTO under different electrochemical conditions.
  • Comparative analysis of electrochemical performance.
  • Dataset generation for simulation of wireless cell stimulation.

Conclusions:

  • The presented data facilitates a deeper understanding of modified conducting polymers in bipolar electrochemistry.
  • This work supports the advancement of wireless cell stimulation technologies.
  • The dataset is valuable for future research in electroactive polymer-based biomedical devices.