a.Center for Advanced Structural Materials, State Key Lab of Metastable Materials Science and Technology, and College of Materials Science and Engineering, Yanshan University, Qinhuangdao 066004, China
b.Department of Polymer Science and Engineering, Inha University, Incheon 22212, Korea
zhenjie_shine@163.com (Z.J.Z.)
ydliu@ysu.edu.cn (Y.D.L.)
收稿:2026-01-19,
录用:2026-03-06,
网络首发:2026-06-08,
纸质出版:2026-07-05
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Yang, Y. B.; Wan, Y.; Zhang, Z. X.; Zhao, Z. J.; Liang, Y. R.; Choi, H. J.; Liu, Y. D. Soft-segment-engineered self-healing polyurethane for high-performance electrorheological elastomers and capacitive sensors. Chinese J. Polym. Sci. 2026, 44, 2269–2281
Yan-Bo Yang, Yao Wan, Zi-Xuan Zhang, et al. Soft-segment-engineered Self-healing Polyurethane for High-performance Electrorheological Elastomers and Capacitive Sensors[J]. Chinese Journal of Polymer Science, 2026, 44(7): 2269-2281.
Yang, Y. B.; Wan, Y.; Zhang, Z. X.; Zhao, Z. J.; Liang, Y. R.; Choi, H. J.; Liu, Y. D. Soft-segment-engineered self-healing polyurethane for high-performance electrorheological elastomers and capacitive sensors. Chinese J. Polym. Sci. 2026, 44, 2269–2281 DOI: 10.1007/s10118-026-3644-3.
Yan-Bo Yang, Yao Wan, Zi-Xuan Zhang, et al. Soft-segment-engineered Self-healing Polyurethane for High-performance Electrorheological Elastomers and Capacitive Sensors[J]. Chinese Journal of Polymer Science, 2026, 44(7): 2269-2281. DOI: 10.1007/s10118-026-3644-3.
High-performance self-healing electrorheological elastomers were fabricated using polyurethane with engineered soft segments as the matrix
which also exhibited capacitive sensing performance
demonstrating their multifunctional application potential.
Polyureth
ane (PU) holds promise as a matrix for electrorheological elastomers (EREs) because of its excellent mechanical properties; however
its high modulus often limits electrorheological (ER) efficiency. This study addresses this by tailoring the soft-segment architecture of PU to adjust its mechanical and dielectric properties
thus improving the ER response of the PU-based ERE. Dynamic covalent bonds have also been introduced to enable self-healing. Using poly(propylene glycol) (PPG)
poly(tetramethylene glycol) (PTMG)
and polycaprolactone (PCL) as the soft segments
we fabricated EREs with 20 wt% TiO
2
. The resulting PPG-ERE exhibited an outstanding ER effect of 229.4% at 3 kV/mm
along with a high stretchability (1835% elongation) and tensile strength of 3.6 MPa. PTMG-ERE has the highest storage modulus of 1.43 MPa at 3 kV/mm and a relatively high tensile strength of up to 6.5 MPa
which is attributed to enhanced hydrogen bonding interactions among the regular PTMG segments. The PCL-ERE with the highest Young’s modulus resulted in the lowest ER efficiency of 48% because of its high crystallization tendency. The PPG-ERE also demonstrated efficient self-healing
recovering 79% of its mechanical strength after 12 h at room temperature. When applied in a capacitive pressure sensor
the PPG-ERE showed a fast response (220 ms) and recovery (90 ms)
detecting forces as low as 3 N. This study provides a practical strategy for designing high-performance multifunctional EREs through soft-segment engineering and dynamic bonding.
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