TY - JOUR
T1 - Design and Performance Enhancement of a Flexible Tactile Sensor with Skin-Inspired Multilayer Architecture and Hair-Mimicking Microcolumn Embedding
AU - Zheng, Junhua
AU - Wang, Yang
AU - Lu, Yanan
AU - Wu, Wenbin
AU - Fan, Xuanqing
AU - Zhao, Qi
AU - Li, Yuhang
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/2/4
Y1 - 2026/2/4
N2 - Accurate and decoupled detection of normal and shear forces is essential for next-generation tactile systems but remains challenging due to structural limitations and material constraints in existing flexible sensors. To address this, a biomimetic trilayer flexible sensor that integrates a rigid microcolumn and dual piezoresistive layers of liquid metal is designed, enabling simultaneous detection of pressure and shear strain. A scalable spray-coating process is developed using ethanol- and iron-modified liquid metal ink, which improves adhesion to PDMS and prevents nozzle corrosion. Guided by finite element simulations (ABAQUS controlled via Python), the sensor geometry is optimized for enhanced directional decoupling. Experimental results demonstrate excellent linearity (R2 > 0.996) across a wide pressure range (70.77–533.61 kPa), rapid response, and strong durability under repeated loading. This work provides a robust and scalable approach for fabricating high-performance, multimodal flexible sensors with broad potential in robotic e-skins, industrial inspection, and interactive electronics.
AB - Accurate and decoupled detection of normal and shear forces is essential for next-generation tactile systems but remains challenging due to structural limitations and material constraints in existing flexible sensors. To address this, a biomimetic trilayer flexible sensor that integrates a rigid microcolumn and dual piezoresistive layers of liquid metal is designed, enabling simultaneous detection of pressure and shear strain. A scalable spray-coating process is developed using ethanol- and iron-modified liquid metal ink, which improves adhesion to PDMS and prevents nozzle corrosion. Guided by finite element simulations (ABAQUS controlled via Python), the sensor geometry is optimized for enhanced directional decoupling. Experimental results demonstrate excellent linearity (R2 > 0.996) across a wide pressure range (70.77–533.61 kPa), rapid response, and strong durability under repeated loading. This work provides a robust and scalable approach for fabricating high-performance, multimodal flexible sensors with broad potential in robotic e-skins, industrial inspection, and interactive electronics.
KW - biomimetic structures
KW - flexible tactile sensors
KW - liquid metal
KW - robotic e-skins
UR - https://www.scopus.com/pages/publications/105025135400
U2 - 10.1002/adem.202501898
DO - 10.1002/adem.202501898
M3 - 文章
AN - SCOPUS:105025135400
SN - 1438-1656
VL - 28
JO - Advanced Engineering Materials
JF - Advanced Engineering Materials
IS - 3
M1 - e202501898
ER -