Tienan Zhao, Zihao Li, Yuzhu Li, Bin Chai, Weichang Xie, Boyue Gao, Kai Xue, Xingyi Huang, Xiaofeng Ye, Chunhai Fan, Zhitao Zhang
Electronic skin (e-skin), which mimics the tactile and multimodal sensing functions of human skin, is emerging as a key technology for wearable healthcare and human–machine interfaces. All-organic piezoelectric composites owing to their intrinsic flexibility and skin conformability represent attractive candidates for e-skin development. However, achieving a high piezoelectric performance, long-term stability, and mechanical compliance simultaneously remains a critical challenge. Here, we report a phytic acid (PA)-assisted molecular engineering strategy to fabricate P(VDF- co -trifluoroethylene) (PVDF-TrFE)/PA composites with a high piezoelectric charge coefficient (87 pC N – 1 ) and voltage coefficient (614 mV m N –1 ), as well as durability. Strong hydrogen bonding between PA hydroxyl groups and PVDF-TrFE chains promotes β-phase crystallization and stabilizes the piezoelectric structure. Meanwhile, the high dielectric constant of phosphate groups enhances the dipole polarization efficiency. Building on this composite, we developed a high-performance piezoelectric skin (pe-skin), which exhibits high sensitivity (35 mV kPa –1 ), a fast response (∼70 ms), and robust stability. The resulting pe-skin enables real-time physiological monitoring, precise pressure mapping, and smart human–machine interfaces. Overall, this work highlights a promising pathway toward the construction of high-performance pe-skin for healthcare, robotics, and human–machine interfaces.