Wearable PEDOT:PSS/DVS-Coated Yarn-Type Transpiration-Driven Electrokinetic Power Generator with High Power Efficiency and Water Stability
Artikel i vetenskaplig tidskrift, 2025

Hydrovoltaic nanogenerators, which harness small quantities of water to generate power, are gaining considerable attention for applications in next-generation wearable electronics. Conventional hydrovoltaic nanogenerators are constrained by their limited power density and suboptimal long-term stability. Therefore, a transpiration-driven electrokinetic power generator (TEPG) based on silk yarn coated with poly(3,4-ethylenedioxythiophene):poly(styrene sulfonate) (PEDOT:PSS)/divinyl sulfone (DVS) and designed as a wearable hydrovoltaic nanogenerator offering outstanding power generation efficiency and water stability is presented in this study. Given its hydrophilic surface, mechanical durability, and high aspect ratio, silk yarn is used to design a yarn-based TEPG system to achieve high spatial-efficiency and maximize volumetric power density. Furthermore, the covalent crosslinking agent, DVS, is introduced to sustain the long-term, high-power production efficiency of PEDOT:PSS. The devised yarn-type TEPG system generates a maximum power of 112 mu W cm(-3) with artificial sweat. A system comprising 25 yarn-type TEPGs arranged in a series-parallel configuration is implemented utilizing the high spatial-efficiency of the sewable yarn-type TEPG. The results demonstrate the potential of wearable hydrovoltaic nanogenerators as next-generation renewable energy systems for wearable applications.

water stability

PEDOT:PSS

yarn-type transpiration-driven electrokinetic power generator

silk yarn

divinyl sulfone

Författare

Hyungsub Yoon

Chung-Ang University

Heebo Ha

Chung-Ang University

Mintaek Hong

Chungbuk National University

Seonghun Lee

Ajou Univ

Mathis Brette Mortensen

Tillämpad kemi 8.2

Ji-Won Jung

Konkuk University

Ki Ro Yoon

Korea Institute of Science and Technology (KITECH)

Ergang Wang

Chalmers, Kemi och kemiteknik

Han Seul Kim

Chungbuk National University

Byungil Hwang

Chung-Ang University

Tae Gwang Yun

Ajou Univ

Advanced Science

2198-3844 (ISSN) 21983844 (eISSN)

Vol. In Press

Ämneskategorier (SSIF 2025)

Materialkemi

Annan elektroteknik och elektronik

Styrkeområden

Materialvetenskap

DOI

10.1002/advs.202504463

PubMed

40560000

Mer information

Senast uppdaterat

2025-07-03