Zhen Huang, Jiaxin Zhang, Yifan Ma, Ruonan Peng, Xinrong Liu, Yichong Song, Feifei Pu, Yuting Gao
Effective monitoring of mechanical stimuli such as pressure and torsion is essential for guiding wound management, yet current pressure-sensitive adhesives rarely integrate stable sensing, tissue-compatible adhesion, and antibacterial protection. Here, we develop a multifunctional conductive pressure-sensitive adhesive elastomer (PTAHCA) constructed from a dynamic thioctic-acid-based polymer network reinforced with clay nanotubes and ionic components. Synergistic dynamic covalent and non-covalent interactions stabilize the polymer matrix and markedly enhance its mechanical robustness and functional durability. PTAHCA exhibits high electrical conductivity, tissue-compatible adhesion, rapid self-healing, and broad-spectrum antibacterial activity while maintaining excellent biocompatibility. Its pronounced strain-dependent electrical response enables real-time detection of subtle skin deformation for continuous motion and physiological activity monitoring. In vivo studies further show that PTAHCA efficiently eliminates wound-associated bacteria, promotes collagen deposition, and accelerates tissue regeneration. This integrated material strategy establishes a versatile platform for next-generation intelligent wound dressings that combine sensing, protection, and therapeutic functions. This material strategy provides a versatile adhesive elastomer platform that supports both antibacterial wound repair and real-time strain monitoring, offering a promising route toward next-generation multifunctional wound dressings.