Strong, tough and environment-tolerant organohydrogels for flaw-insensitive strain sensing

Abstract

Conductive organohydrogels are promising for strain sensing, while their weak mechanical properties, poor crack propagation resistance and unstable sensing signals during long-term use have seriously limited their applications as high-performance strain sensors. Here, we propose a facile method, i.e., solvent exchange assisted hot-pressing, to prepare strong yet tough, transparent and anti-fatigue ionically conductive organohydrogels (ICOHs). The densified polymeric network and improved crystallinity endow ICOHs with excellent mechanical properties. The tensile strength, toughness, fracture energy and fatigue threshold of ICOHs can reach 36.12 ± 4.15 MPa, 54.57 ± 2.89 MJ m−3, 43.44 ± 8.54 kJ m−2 and 1212.86 ± 57.20 J m−2, respectively, with a satisfactory fracture strain of 266 ± 33%. In addition, ICOH strain sensors with freezing and drying resistance exhibit excellent cycling stability (10 000 cycles). More importantly, the fatigue resistance allows the notched strain sensor to work normally with no crack propagation and output stable and reliable sensing signals. Overall, the unique flaw-insensitive strain sensing makes ICOHs promising in the field of wearable and durable electronics.

Graphical abstract: Strong, tough and environment-tolerant organohydrogels for flaw-insensitive strain sensing

Supplementary files

Article information

Article type
Communication
Submitted
12 Jun 2024
Accepted
21 Aug 2024
First published
22 Aug 2024

Mater. Horiz., 2024, Advance Article

Strong, tough and environment-tolerant organohydrogels for flaw-insensitive strain sensing

Y. Wang, Z. Liu, Y. Liu, J. Yan, H. Wu, H. Zhang, H. Li, J. Wang, H. Xue, L. Wang, Y. Shi, L. Tang, P. Song and J. Gao, Mater. Horiz., 2024, Advance Article , DOI: 10.1039/D4MH00740A

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