3D Printing of Conducting Polymer Hydrogels for Electrostimulation‐Assisted Tissue Engineering

C Chien Minh Tran (Intelligent Polymer Research Institute, Faculty of Engineering and Information Science University of Wollongong, Innovation Campus North Wollongong NSW 2500 Australia) Z Zhilian Yue (Intelligent Polymer Research Institute AIIM Facility Innovation Campus University of Wollongong North Wollongong NSW Australia) C Chunyan Qin (Intelligent Polymer Research Institute, Faculty of Engineering and Information Science University of Wollongong, Innovation Campus North Wollongong NSW 2500 Australia) K Kusuma B. C. Imani (Department of Robotics Ritsumeikan University Kusatsu 525‐8577 Japan) M Mirella Dottori (School of Medical Indigenous and Health Sciences Molecular Horizons University of Wollongong Wollongong NSW 2522 Australia) R Robert J. Forster (National Centre for Sensor Research, School of Chemical Sciences Dublin City University Dublin 9 Ireland) G Gordon G. Wallace

Abstract

AbstractElectrostimulation (ES) is at the cutting edge of contemporary medicine, effectively promoting tissue regeneration and wound healing by applying small electrical cues to stimulate specific cellular responses. The 3D printing of electronically conducting hydrogels (CHs) offers a transformative strategy for developing ES platforms. These hydrogels integrate conformal, customizable geometries, mechanical compliance, adequate electrical conductivity, and biocompatibility, enabling seamless interaction with native tissues. Nanosized inherently conducting polymers (ICPs) are promising conductive ink constituents for 3D printing, owing to their straightforward preparation, electrical conductivity, and printability. However, 3D printing of ICP‐based CHs faces several challenges. Controlling the tendency of ICPs to aggregate and achieving the rheological properties required by specific 3D printing modalities are vital for achieving uniform and precise printed structures. Furthermore, post‐printing solidification of ICPs often uses harsh curing conditions, e.g., high temperatures or toxic solvents, rendering encapsulation of biological components and cells infeasible. This review critically assesses strategies for synthesizing ICP nanostructures, preparing ICP‐based CHs, and applicable 3D printing techniques. Progress in tissue regeneration utilizing 3D‐printed ICP‐based CHs as ES devices is highlighted, along with future perspectives regarding the development of bio‐functional ICPs and integrated powering mechanisms for closed‐loop ES systems.

Article Details

Volume / Issue Vol. 37, Issue 36
Published September 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

C

Chien Minh Tran

Intelligent Polymer Research Institute, Faculty of Engineering and Information Science University of Wollongong, Innovation Campus North Wollongong NSW 2500 Australia

Z

Zhilian Yue

Intelligent Polymer Research Institute AIIM Facility Innovation Campus University of Wollongong North Wollongong NSW Australia

C

Chunyan Qin

Intelligent Polymer Research Institute, Faculty of Engineering and Information Science University of Wollongong, Innovation Campus North Wollongong NSW 2500 Australia

K

Kusuma B. C. Imani

Department of Robotics Ritsumeikan University Kusatsu 525‐8577 Japan

M

Mirella Dottori

School of Medical Indigenous and Health Sciences Molecular Horizons University of Wollongong Wollongong NSW 2522 Australia

R

Robert J. Forster

National Centre for Sensor Research, School of Chemical Sciences Dublin City University Dublin 9 Ireland

G

Gordon G. Wallace