Shape-memory polyurethanes for polar wearables with ultrasensitive multi-monitoring.

Chen, Tianze; Xu, Jing; Wang, Chongyang; Zhang, Xinrui; Pei, Xianqiang; Wang, Tingmei; Wang, Qihua · Nat Commun · 2025

basic_science · Level V

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Abstract

Integrating environmental stability and multi-monitoring modules into flexible sensor remains a pivotal scientific challenge. This study presents a supramolecular polyurethane (PU) engineered with fluorine-rich segments that form electrostatic crosslinks with positively charged ionic groups at polymer chain terminals and establish fluorine-dipole interactions with blended ionic liquid (IL) to stabilize ion transport pathways. The resulting ionically conductive elastomer combines shape memory capacity, self-healing property, and cryogenic tolerance, retaining robust mechanical strength (~32.31 MPa), toughness (~107.05 MJ m⁻<sup>3</sup>) and substantial ionic conductivity even at -40 °C. Notably, it exhibits a high temperature coefficient of resistance (TCR = 8.05% °C⁻<sup>1</sup>) at cryogenic temperatures (-40 °C to -30 °C), making it attractive for the development of cryogenic sensing materials. Additionally, the material exhibits high-sensitivity physiological monitoring capabilities with signal fidelity, serving as ionic skins for accurate physiological signal acquisition. Such multifunctional adaptability positions it as an ideal candidate for next-generation flexible electronics requiring reliable performance in extreme environments.