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A Simple and Scalable Fabrication Method for Organic Electronic Devices on Textiles
Published on: March 13, 2017
Innovations in Printed Transparent Conducting Electrodes for Advanced Next-Generation Electronics: A Comprehensive
Vinayak Vitthal Satale1,2, Sourav Acharya1, Keum-Jin Ko1
1Department of Flexible and Printable Electronics, LANL-CBNU Engineering Institute, Korea, Jeonbuk National University, Jeonju, Republic of Korea.
Abstract:
The emergence of wearable electronics has revolutionized photophysical and electrochemical, enabling lightweight, flexible energy harvesting that transcends the limitations of conventional rigid electronic technologies. With power conversion efficiencies now approaching those of established silicon devices, emerging electronics (photovoltaics, photodetectors, light-emitting diodes, and energy storage devices) stand at the forefront of next-generation wearable technology. Advancing high-performance, flexible, next-generation devices depends on developing transparent electrodes that successfully integrate excellent electrical conductivity, outstanding optical transparency, strong mechanical flexibility, and ultrathin form factors. This review explores how the figure of merit serves as a multidimensional measure of the optical, electrical, and mechanical properties of transparent electrodes. We provide an in-depth analysis of cutting-edge transparent conductive electrode platforms spanning conducting polymers, metallic nanowire networks and mesh architectures, carbon-based nanomaterials, transparent conducting oxides, and emerging novel materials, each offering unique advantages for flexible electronic device applications. Looking ahead, we critically evaluate the technological challenges and transformative opportunities shaping the pathway from laboratory innovations to commercially viable, flexible, and wearable electronics, ultimately enabling a new era of adaptable, sustainable energy solutions.

