@article{Xu2026, 
author = {Shiwei Xu and Mufan Zhang and Deyang Kong and Feng Qin and Pengfan Wu and Zhongyong Mo and Hengyu Guo and Hua Yu},
title = {Dual-plasticized TPU/PVC gel with dielectric-conductive properties for triboresistive position sensors},
year = {2026},
journal = {Nano Research},
keywords = {triboresistive position sensor, triboelectric nanogenerator, dual-plasticized gel, flexible self-powered sensor, stretchable electronics},
url = {https://www.sciopen.com/article/10.26599/NR.2026.94908764},
doi = {10.26599/NR.2026.94908764},
abstract = {Flexible self-driven position sensors are essential components for intelligent wearables, human-computer interaction, and soft robotics, requiring excellent mechanical compliance, high positioning accuracy, and simplified device structures. Here, we present a novel single-layer integrated triboelectric nanogenerator (S-TENG) serving as a triboresistive position sensor (TPS) based on dual-plasticized TPU/PVC gel (TPDP gel), constructed via a synergistic plasticization strategy with dibutyl adipate (DBA) as the primary plasticizer and propylene carbonate (PC) as the secondary plasticizer. This strategy optimizes the gel’s dielectric and insulating properties, increasing the dielectric constant from 4.2 to 7.8 (an 85% enhancement) and reducing the leakage current density to 0.02 μA·cm-². Based on the optimized gel, a single-layer integrated S-TENG was fabricated, exhibiting 50 V open-circuit voltage and 45.1 mW·m⁻² maximum power density, while maintaining stable performance under 100% strain, 180° bending, and 360° twisting. Utilizing the gel’s intrinsic resistive properties, 1D and 2D TPS were constructed, achieving 2.785% and 3.975% relative errors at 0% and 100% strain, respectively, and &lt;4 mm positioning deviation in a 7 cm×7 cm area. The proposed TPS features a simplified structure and high stretchability, providing a new approach for flexible self-driven sensing systems.}
}