Shape-Controlled Poly(N-isopropylacrylamide) Actuators Enabled by Tensile-Stress Mismatch for Temperature-Adaptive Textiles

Thermal comfort is a key determinant of human health and requires adaptive responses to dynamic environments. Here, we report a temperature-adaptive textile enabled by a tensile stress mismatch-driven poly(N-isopropylacrylamide) (PNIPAM) actuator operating within a human-friendly temperature range of 18–38 °C. A pre-stretched polyurethane core fiber integrated within a PNIPAM sheath in a noncoaxial configuration induces programmable bending through tensile-stress mismatch between elastic recovery and hydrogel swelling. Unlike conventional bilayer hydrogel actuators based on differential swelling between laminated layers, this pre-stretching strategy amplifies structural deformation through elastic restoring stress. When extended to a two-dimensional textile architecture, this strategy enables reversible, dynamic pore modulation with an approximately 400% increase in pore area. This study provides a promising platform for smart adaptive textiles, wearable healthcare, and soft robotics.

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Publication Details

Journal
Actuators
Published
2026-09-22
DOI
https://doi.org/10.3390/act15100498
Primary Topic
Advanced Materials and Mechanics
Type
article
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article

Shape-Controlled Poly(N-isopropylacrylamide) Actuators Enabled by Tensile-Stress Mismatch for Temperature-Adaptive Textiles

Hyeon Jun Sim, Seong Chu Lim, Seon Jeong Kim, Wonkyeong Son et al.
Actuators
Advanced Materials and Mechanics
article

Shape-Controlled Poly(N-isopropylacrylamide) Actuators Enabled by Tensile-Stress Mismatch for Temperature-Adaptive Textiles

Hyeon Jun Sim, Seong Chu Lim, Seon Jeong Kim, Wonkyeong Son, Jung Gi Choi, Jeongyun Kim, Seokkan Ki, Miseon Shim, Gyu Hyeon Song, Jun Yeong Lee, Duri Han, Changsoon Choi, Jeyeong Kim
article en

Abstract

Thermal comfort is a key determinant of human health and requires adaptive responses to dynamic environments. Here, we report a temperature-adaptive textile enabled by a tensile stress mismatch-driven poly(N-isopropylacrylamide) (PNIPAM) actuator operating within a human-friendly temperature range of 18–38 °C. A pre-stretched polyurethane core fiber integrated within a PNIPAM sheath in a noncoaxial configuration induces programmable bending through tensile-stress mismatch between elastic recovery and hydrogel swelling. Unlike conventional bilayer hydrogel actuators based on differential swelling between laminated layers, this pre-stretching strategy amplifies structural deformation through elastic restoring stress. When extended to a two-dimensional textile architecture, this strategy enables reversible, dynamic pore modulation with an approximately 400% increase in pore area. This study provides a promising platform for smart adaptive textiles, wearable healthcare, and soft robotics.

ActuatorsVol. 15(10)
Tech University of Korea (KR), Konkuk University (KR), Robotics Research (United States) (US), Hanyang University (KR), Chung-Ang University (KR), Korea University of Science and Technology (KR), Korea Institute of Industrial Technology (KR)
Openalex Percentile: Top 20%
Advanced Materials and Mechanics
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Shape-Controlled Poly(N-isopropylacrylamide) Actuators Enabled by Tensile-Stress Mismatch for Temperature-Adaptive Textiles — Hyeon Jun Sim, Seong Chu Lim, et al. · Actuators (2026) | TGRS Research Map | TGRS