Emerging Challenges in Textile Energy Electrodes: Interfacial Engineering for High‐Performance Next‐Generation Flexible Energy Storage Devices

Author:

Chang Woojae1ORCID,Yong Euiju1ORCID,Chung Yoon Jang1ORCID,Ko Yongmin2ORCID,Cho Jinhan134ORCID

Affiliation:

1. Department of Chemical and Biological Engineering Korea University 145 Anam-ro, Seongbuk-gu Seoul 02841 Republic of Korea

2. Division of Energy Technology Materials Research Institute Daegu Gyeongbuk Institute of Science and Technology (DGIST) 333 Techno Jungang-daero Hyeongpung-myeon Dalseong-gun Daegu 42988 Republic of Korea

3. KU-KIST Graduate School of Converging Science and Technology Korea University 145 Anam-ro, Seongbuk-gu Seoul 02841 Republic of Korea

4. Soft Hybrid Materials Research Center Advanced Materials Research Division Korea Institute of Science and Technology (KIST) 5 Hwarang-ro 14-gil Seongbuk-gu Seoul 02792 Republic of Korea

Abstract

The development of highly conductive fibril‐type textile electrodes is crucial for the advancement of various smart wearable electronics including high‐performance energy storage devices. To achieve this goal, it is essential to convert insulating textiles into conductive counterparts while maintaining flexibility and porosity. Additionally, the incorporation of electrochemically active components into textile conductors enables tailor‐made textile energy electrodes for specific applications. Thus, textile conductors act not only as conductors but also as energy reservoirs for energy‐active components, providing a facile electron transfer network. However, textile conductors fabricated by most existing methods face challenges such as low conductivity, blockage, and brittleness. One approach to overcome these problems is to utilize interfacial interactions between individual components and textiles. Conductive nanoparticle assembly and electrodeposition based on such rational design result in highly conductive, flexible, and large surface area textile conductors. The subsequent guided assembly of active components creates high‐performance textile energy electrodes. This perspective describes how interfacial interaction‐based assembly can enhance the performance of textile conductors and textile energy electrodes. It also explores various conductor preparation approaches and recent advances in the field for applications in supercapacitors and lithium‐ion batteries.

Publisher

Wiley

Subject

General Earth and Planetary Sciences,General Environmental Science

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