TY - JOUR
T1 - A nonlinear framework for deformable ionic conductor fibers with variable cross-sections
T2 - Application to mechanically regulated ionic junctions
AU - Fan, Yiming
AU - Zhao, Luke
AU - Jin, Feng
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/5/1
Y1 - 2026/5/1
N2 - Deformable ionic conductors combine mechanical stretchability with ionic conductivity, enabling broad applications in sensing, actuation, and energy harvesting. In this study, we propose an ionic junction with a variable cross-section, where the ion transport behavior can be regulated by applying tensile or compressive loads. This effect arises from the intrinsic electro-chemo-elastic coupling of these materials. To capture this mechanism, we developed a one-dimensional framework incorporating constitutive nonlinearity and solved it efficiently using the differential quadrature method. The results show that the ionic junction exhibits unidirectional conductivity, and its ionic current-voltage characteristics can be modulated by mechanical loading. Through variable cross-section design, the axial stress gradient within the fiber influences the distribution of electrochemical potential, thereby affecting ion transport behavior. We further analyzed the influence of different cross-sectional functions on the degree of regulation, and the analysis reveals that steeper changes in cross-sectional area along the axis lead to stronger mechanical modulation. The model and findings presented in this paper provide a foundation for the development of intelligent ionic devices.
AB - Deformable ionic conductors combine mechanical stretchability with ionic conductivity, enabling broad applications in sensing, actuation, and energy harvesting. In this study, we propose an ionic junction with a variable cross-section, where the ion transport behavior can be regulated by applying tensile or compressive loads. This effect arises from the intrinsic electro-chemo-elastic coupling of these materials. To capture this mechanism, we developed a one-dimensional framework incorporating constitutive nonlinearity and solved it efficiently using the differential quadrature method. The results show that the ionic junction exhibits unidirectional conductivity, and its ionic current-voltage characteristics can be modulated by mechanical loading. Through variable cross-section design, the axial stress gradient within the fiber influences the distribution of electrochemical potential, thereby affecting ion transport behavior. We further analyzed the influence of different cross-sectional functions on the degree of regulation, and the analysis reveals that steeper changes in cross-sectional area along the axis lead to stronger mechanical modulation. The model and findings presented in this paper provide a foundation for the development of intelligent ionic devices.
KW - Deformable ionic conductor
KW - Differential quadrature method
KW - Ionic double layer
KW - Ionic junction
KW - Multi-physics coupling
UR - https://www.scopus.com/pages/publications/105029013115
U2 - 10.1016/j.ijengsci.2026.104478
DO - 10.1016/j.ijengsci.2026.104478
M3 - 文章
AN - SCOPUS:105029013115
SN - 0020-7225
VL - 222
JO - International Journal of Engineering Science
JF - International Journal of Engineering Science
M1 - 104478
ER -