TY - JOUR
T1 - Bilayer encapsulation strategy enabled ultra-stretchable electronic skin for human-machine interaction
AU - Kong, Miao
AU - Chen, Yuxin
AU - Gao, Shengwei
AU - Wang, Xue
AU - Zhuang, Jiaxin
AU - Huang, Panqi
AU - Li, Zifan
AU - Wang, Xu
AU - Wang, Zilin
AU - Zhang, Yuqing
AU - Cheng, Ji
AU - Guo, Ruiqi
AU - Zeng, Songshan
AU - Hong, Ying
AU - Wei, Deyuan
AU - Shi, Yingli
AU - Shi, Rui
AU - Liu, Shiyuan
AU - Liu, Yiming
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/7/1
Y1 - 2026/7/1
N2 - Wearable bioelectronic sensors are transforming human-machine interaction by enabling real-time multimodal physiological monitoring and therapeutic functions. However, the existing stretchable strain sensors often struggle to maintain high stretchability and electrical reliability under large deformations, which limits their potential for seamless interaction. Herein, we propose a bilayer encapsulation (BE) strategy that leverages elastomeric films with a gradient modulus to effectively redistribute mechanical stress and significantly enhance stretchability. Moreover, by patterning the Cu/PI membrane into serpentine geometries and combining this design with the BE strategy, the strain sensor achieves a stretchability of up to 127%, which is three to five times higher than that of the conventional single-layer designs. The moduli of each layer can be independently tuned by controlling the curing agent content and the bilayer thickness, without altering the commonly used polydimethylsiloxane substrate. Owing to its excellent conformal contact with human skin, the device enables real-time HMI applications, including motion monitoring and robot arm control. This universal strategy simplifies fabrication and holds promise for advancing real-time health monitoring and embodied intelligence without the requirement for pre-training.
AB - Wearable bioelectronic sensors are transforming human-machine interaction by enabling real-time multimodal physiological monitoring and therapeutic functions. However, the existing stretchable strain sensors often struggle to maintain high stretchability and electrical reliability under large deformations, which limits their potential for seamless interaction. Herein, we propose a bilayer encapsulation (BE) strategy that leverages elastomeric films with a gradient modulus to effectively redistribute mechanical stress and significantly enhance stretchability. Moreover, by patterning the Cu/PI membrane into serpentine geometries and combining this design with the BE strategy, the strain sensor achieves a stretchability of up to 127%, which is three to five times higher than that of the conventional single-layer designs. The moduli of each layer can be independently tuned by controlling the curing agent content and the bilayer thickness, without altering the commonly used polydimethylsiloxane substrate. Owing to its excellent conformal contact with human skin, the device enables real-time HMI applications, including motion monitoring and robot arm control. This universal strategy simplifies fabrication and holds promise for advancing real-time health monitoring and embodied intelligence without the requirement for pre-training.
KW - Bilayer encapsulation
KW - E-skins
KW - Human-machine interaction
KW - Stretchable electronics
KW - Ultra-stretchable
UR - https://www.scopus.com/pages/publications/105037911864
U2 - 10.1016/j.cej.2026.176991
DO - 10.1016/j.cej.2026.176991
M3 - Article
AN - SCOPUS:105037911864
SN - 1385-8947
VL - 539
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 176991
ER -