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Research Article | Open Access

Architectural engineering of asymmetric phase connectivity in ionogels for tough, transparent, and highly conductive strain sensors

Junjie Gu1,§Luofei Li1,§Tiancheng Lv2,§Xiaoyu Huang2Zixiang Zhou6Haoyue Li1Yu Zhang2Yuanqi Cheng2Wenxu Sun6 Bin Xue2 ( )Ying Li3 ( )Liang Dong1,4,5 ( )Yi Cao1,4,5 
School of Chemistry, Nanjing University, Nanjing 210023, China
Collaborative Innovation Center of Advanced Microstructures, National Laboratory of Solid State Microstructure, Department of Physics, Nanjing University, Nanjing 210093, China
Institute of Advanced Materials and Flexible Electronics (IAMFE), School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing 210044, China
Chemistry and Biomedicine Innovation Center (ChemBIC), Nanjing University, Nanjing 210023, China
MOE Key Laboratory of High Performance Polymer Materials & Technology, Nanjing University, Nanjing 210023, China
School of Physical Science and Technology, Nantong University, Nantong 226019, China

§ Junjie Gu, Luofei Li, and Tiancheng Lv contributed equally to this work.

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Abstract

Achieving mechanical robustness and efficient ionic transport simultaneously remains a major challenge for ionogels, as mechanical reinforcement often restricts ion mobility. Here we reported an architectural strategy that resolves this trade-off through composition-programmed asymmetric phase connectivity. By tuning the incompatibility among acrylic acid (AA), poly(ethylene glycol) methacrylate (PEGMA), and the ionic liquid 1-ethyl-3-methylimidazolium bis(trifluorom-ethylsulfonyl)imide ([EMIM][TFSI]), the polymer network spontaneously forms a microphase-separated structure in which a soft ion-conductive phase maintains network continuity, while a rigid reinforcing phase remains confined to dispersed microdomains. This topology enables efficient energy dissipation without disrupting ionic transport or optical transparency. The resulting ionogels exhibit a balanced combination of high stretchability, enhanced toughness, high ionic conductivity, and optical clarity. In contrast, increasing connectivity of the rigid phase produces bicontinuous morphologies that lead to stiff and opaque gels. The optimized ionogel demonstrates excellent strain-sensing performance with high sensitivity, wide strain detection range, and outstanding durability under cyclic deformation. These results highlight phase connectivity as a key structural parameter governing ionogel performance and establish asymmetric phase architecture as a general design principle for multifunctional soft ionic conductors.

Graphical Abstract

An architecturally engineered ionogel is developed via asymmetric phase connectivity. By exploiting thermodynamic incompatibility, the polymer networks and ionic liquid undergo microphase separation. This creates a continuous soft phase for efficient ion transport, reinforced by dispersed rigid microdomains. The ionogel achieves a rare combination of high conductivity, extreme stretchability, remarkable toughness, and optical transparency. Finally, it serves as a high-performance strain sensor for reliable physiological monitoring and machine-learning-assisted human–machine interfaces.

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Nano Research
Article number: 94908880

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Cite this article:
Gu J, Li L, Lv T, et al. Architectural engineering of asymmetric phase connectivity in ionogels for tough, transparent, and highly conductive strain sensors. Nano Research, 2026, 19(10): 94908880. https://doi.org/10.26599/NR.2026.94908880
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Received: 13 March 2026
Revised: 21 April 2026
Accepted: 26 May 2026
Published: 11 August 2026
© The Author(s) 2026. Published by Tsinghua University Press.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, https://creativecommons.org/licenses/by/4.0/).