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◆ ACS Macro Letters2026-04-06· Self-healing hydrogels

Synergistic Hydrophobic and Hofmeister Effects Drive Recyclable, Tough, and Antiswelling Hydrogels for Underwater Communication

Jupen Liu, Ruixue Wang, Ting Li, Wei Lu, Huihui Tan, Qin Huang, Lin Tang, You Yu

原始摘要(英文原文)· Original abstract
The development of high-performance hydrogels for underwater flexible electronics is hindered by a long-standing, seemingly irreconcilable trade-off among antiswelling capability, mechanical robustness, and recyclability. Here, we report a synergistic hydrophobic and Hofmeister effect (SHHE) strategy to fabricate recyclable, tough, and antiswelling hydrogels (RTASH). By incorporating salts (e.g., CO 3 2–, SO 4 2– ) into a hydrophobically modified polymer network, RTASH achieves exceptional antiswelling performance (swelling ratio < 5% after 60 days), high toughness (fracture toughness: 1.9 MJ m –3 ), and stable ionic conductivity (0.35 S m –1 ). The dynamic physical cross-links enable full recyclability, with the material retaining over 80% of its mechanical strength after three reprocessing cycles. When applied as an underwater strain sensor, RTASH exhibits high sensitivity (GF = 0.6), fast response (0.3 s), and long-term stability over 60 days of continuous operation. Leveraging its tunable electromechanical properties, we demonstrate real-time Morse code communication underwater including the reliable transmission of SOS distress signals. This work presents a straightforward and sustainable material fabrication strategy to advance the development of environmentally adaptive underwater communication systems.
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Synergistic Hydrophobic and Hofmeister Effects Drive Recyclable, Tough, and Antiswelling Hydrogels for Underwater Communication — 科研速览 Science Skim