Nanohelical Permeable Electronics with Strain-Insensitive Performance

Stretchable electronics that are permeable to air and moisture are essential for emerging on-skin healthcare applications and human–machine symbiosis, yet a materials-agnostic strategy capable of delivering permeability together with performance-invariant stretchability across diverse electronic materials remains elusive. Here we report a universal and scalable approach for fabricating nanohelical electronic materials by transforming pre-stretched electrospun nanofibres into three-dimensional helical architectures via mismatch-strain-driven buckling. This geometry-enabled strategy accommodates a broad range of functional materials, including metals and organic/inorganic semiconductors, yielding large-area, lightweight and highly permeable nanohelical networks with low effective stiffness and pronounced strain insensitivity. Enabled by their spring-like deformation and intrinsic twist–bend coupling, the nanohelices redistribute strain uniformly and maintain stable electrical performance with negligible drift under large mechanical deformation, even at strains exceeding 50%. Finite-element analysis, together with a semi-analytical scaling model tailored to the half-coated nanofibre geometry, elucidates the underlying mechanics and relates the nanohelix morphology to fibre diameter, coating thickness and modulus contrast. We further demonstrate the versatility of this platform across multiple device modalities, including dry epidermal electrodes, stretchable electroluminescent displays, deformable interconnects, and strain-insensitive pressure, temperature and photodetectors, highlighting its potential for conformal and durable soft-electronic systems. Skin conformal electronics with materials capable of permeability and performance invariant stretchability are sought after. Here, the authors present large-area, lightweight and permeable nanohelical networks by transforming pre-stretched electrospun nanofibres into 3D helical architectures.

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Publication Details

Journal
Nature Communications
Published
2026-09-17
DOI
https://doi.org/10.1038/s41467-026-77875-5
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Nanohelical Permeable Electronics with Strain-Insensitive Performance

Guanwen Liang, Chenning Li, Yuxuan Lin, Sanchuan Zhao et al.
Nature Communications
Advanced Sensor and Energy Harvesting Materials
article

Nanohelical Permeable Electronics with Strain-Insensitive Performance

Guanwen Liang, Chenning Li, Yuxuan Lin, Sanchuan Zhao, Jian Zhu, Haoran Fu, Banghao Wu, Chaopeng Wang, Zhehui Zhao, Zhaoqin Han, Yunmin Chen, Jian Wang, Wei Wang, Yingtao Zhao, Jun Yin, Zhengmeng Yuan, Jiaye Li, Xin Zhang, Shiyu Liu, Xiang Li, Zhenhua Yang, Lei Cui
article en

Abstract

Stretchable electronics that are permeable to air and moisture are essential for emerging on-skin healthcare applications and human–machine symbiosis, yet a materials-agnostic strategy capable of delivering permeability together with performance-invariant stretchability across diverse electronic materials remains elusive. Here we report a universal and scalable approach for fabricating nanohelical electronic materials by transforming pre-stretched electrospun nanofibres into three-dimensional helical architectures via mismatch-strain-driven buckling. This geometry-enabled strategy accommodates a broad range of functional materials, including metals and organic/inorganic semiconductors, yielding large-area, lightweight and highly permeable nanohelical networks with low effective stiffness and pronounced strain insensitivity. Enabled by their spring-like deformation and intrinsic twist–bend coupling, the nanohelices redistribute strain uniformly and maintain stable electrical performance with negligible drift under large mechanical deformation, even at strains exceeding 50%. Finite-element analysis, together with a semi-analytical scaling model tailored to the half-coated nanofibre geometry, elucidates the underlying mechanics and relates the nanohelix morphology to fibre diameter, coating thickness and modulus contrast. We further demonstrate the versatility of this platform across multiple device modalities, including dry epidermal electrodes, stretchable electroluminescent displays, deformable interconnects, and strain-insensitive pressure, temperature and photodetectors, highlighting its potential for conformal and durable soft-electronic systems. Skin conformal electronics with materials capable of permeability and performance invariant stretchability are sought after. Here, the authors present large-area, lightweight and permeable nanohelical networks by transforming pre-stretched electrospun nanofibres into 3D helical architectures.

Nature Communications
Tianjin Normal University (CN), Nankai University (CN), Zhejiang Institute of Science and Technology Information (CN), Zhejiang University (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 21%
Advanced Sensor and Energy Harvesting Materials
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