Meter-scale heterostructure printing for high-toughness fiber electrodes in intelligent digital apparel

G Gun-Hee Lee Y Yunheum Lee H Hyeonyeob Seo K Kyunghyun Jo J Jinwook Yeo S Semin Kim J Jae-Young Bae C Chul Kim C Carmel Majidi J Jiheong Kang S Seung-Kyun Kang S Seunghwa Ryu S Seongjun Park

Abstract

Abstract Intelligent digital apparel, which integrates electronic functionalities into clothing, represents the future of healthcare and ubiquitous control in wearable devices. Realizing such apparel necessitates developing meter-scale conductive fibers with high toughness, conductivity, stable conductance under deformation, and mechanical durability. In this study, we present a heterostructure printing method capable of producing meter-scale (~50 m) biphasic conductive fibers that meet these criteria. Our approach involves encapsulating deformable liquid metal particles (LMPs) within a functionalized thermoplastic polyurethane matrix. This encapsulation induces in situ assembly of LMPs during fiber formation, creating a heterostructure that seamlessly integrates the matrix’s durability with the LMPs’ superior electrical performance. Unlike rigid conductive materials, deformable LMPs offer stretchability and toughness with a low gauge factor. Through precise twisting using an engineered annealing machine, multiple fiber strands are transformed into robust, electrically stable meter-scale electrodes. This advancement enhances their practicality in various intelligent digital apparel applications, such as stretchable displays, wearable healthcare systems, and digital controls.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 09, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (13)

G

Gun-Hee Lee

Y

Yunheum Lee

H

Hyeonyeob Seo

K

Kyunghyun Jo

J

Jinwook Yeo

S

Semin Kim

J

Jae-Young Bae

C

Chul Kim

C

Carmel Majidi

J

Jiheong Kang

S

Seung-Kyun Kang

S

Seunghwa Ryu

S

Seongjun Park