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March 3, 2026Advanced Materials6 citationsOpen Access

All‐Solid Biomass Dual Network Ionic Conducting Elastomer with Multi Ion Synergy for Low‐Temperature Resistant Sensor and Triboelectric Nanogenerator

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QZQiying ZhangSQSiyao QinJQJiajun Qu

Key Points

  • The elastomer achieves high ionic conductivity of 3.74 × 10⁻³ S·m⁻¹ and mechanical strength of 0.877 MPa, enabling effective low-temperature applications.
  • Strain sensors based on the elastomer function reliably at -20°C, performing tasks like motion sensing and Morse code anti-counterfeiting.
  • Molecular dynamics simulations confirm Li─O coordination and hydrogen bonding contribute to both mechanical strength and ionic conductivity.
  • Power density at -30°C increases to 290% of values measured at room temperature, suggesting a significant improvement in low-temperature performance.

Abstract

Soft ionic conductors are ideal candidates for applications in wearable electronics, soft robotics, and human-machine interfaces. However, achieving a balance between mechanical performance and ionic conductivity remains challenging. Besides, hydrogel-based conductors typically fail at sub-zero temperatures. To overcome these concurrent limitations, we report a fully solid-state ionic conducting elastomer featuring a multi-ionic (LiTFSI/ChCl) dual-network derived from biomass. Molecular dynamics and density functional theory simulations verify synergistic Li─O coordination and hydrogen-bonding networks, which enable a rare combination of mechanical strength (0.877 MPa, 587% elongation) and high ionic conductivity (3.74 × 10-3 S·m- 1). The strain sensors based on the elastomers enable stable motion sensing at -20°C and Morse code anti-counterfeiting. Moreover, the elastomer serves as a stretchable triboelectric nanogenerator. At a resistance of 1 MΩ, the power density at -30°C increases to 290% of the value measured at room temperature, demonstrating its potential as a reliable and eco-friendly alternative to conventional batteries in low-temperature conditions. This work provides a novel design strategy for durable, high-performance ionic conductors, paving the way for their use in extreme environment.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69a75aafc6e9836116a20d56https://doi.org/10.1002/adma.202523516
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