TY - JOUR
T1 - Ultra-wide and linear range flexible piezoelectric sensor based on PVDF/BNNS composites
AU - Guan, Yingbo
AU - Li, Yingjie
AU - Zhang, Houyu
AU - Yang, Haiyun
AU - Ye, Hongning
AU - Chen, Xueren
AU - Jiang, Mengjie
AU - Lei, Mengyong
AU - Wang, Huanming
AU - Zhao, Hu
AU - Chen, Xiaoming
N1 - Publisher Copyright:
© 2026 The Author(s)
PY - 2026
Y1 - 2026
N2 - Flexible piezoelectric sensors have attracted significant attention in the field of structural health monitoring (SHM) owing to their excellent frequency response capability and conformal attachment to complex surfaces. However, the conventional blending methods often fail to achieve uniform dispersion and ordered orientation of nanofillers within polymer matrices, which limits the sensitivity and linear measurement range. To address this issue, a fabrication strategy for flexible piezoelectric sensors based on the induced orientation by shear flow is proposed. During the blade coating process, a strong shear flow field is generated, which induces high-modulus two-dimensional boron nitride nanosheets (BNNSs) to form a highly ordered parallel lamellar structure within the polyvinylidene fluoride (PVDF) matrix. This architecture not only constructs an efficient stress transfer pathway but also significantly enhances the deformation resistance and structural stability of the composite. The fabricated PVDF/BNNS composite piezoelectric sensor achieves an ultra-wide linear measurement of 0–619MPa, approximately 1.6 times that of pristine PVDF, while maintaining a high voltage sensitivity of 16.6mV MPa−1, which is about 2.3 times higher than that of pure PVDF based sensor. Furthermore, the sensor exhibits excellent response capability for broadband vibration signals in the frequency range of 20–100Hz, meaning its practical potential for intelligent monitoring and condition sensing of industrial equipment.
AB - Flexible piezoelectric sensors have attracted significant attention in the field of structural health monitoring (SHM) owing to their excellent frequency response capability and conformal attachment to complex surfaces. However, the conventional blending methods often fail to achieve uniform dispersion and ordered orientation of nanofillers within polymer matrices, which limits the sensitivity and linear measurement range. To address this issue, a fabrication strategy for flexible piezoelectric sensors based on the induced orientation by shear flow is proposed. During the blade coating process, a strong shear flow field is generated, which induces high-modulus two-dimensional boron nitride nanosheets (BNNSs) to form a highly ordered parallel lamellar structure within the polyvinylidene fluoride (PVDF) matrix. This architecture not only constructs an efficient stress transfer pathway but also significantly enhances the deformation resistance and structural stability of the composite. The fabricated PVDF/BNNS composite piezoelectric sensor achieves an ultra-wide linear measurement of 0–619MPa, approximately 1.6 times that of pristine PVDF, while maintaining a high voltage sensitivity of 16.6mV MPa−1, which is about 2.3 times higher than that of pure PVDF based sensor. Furthermore, the sensor exhibits excellent response capability for broadband vibration signals in the frequency range of 20–100Hz, meaning its practical potential for intelligent monitoring and condition sensing of industrial equipment.
KW - flexible sensing
KW - piezoelectric sensor
KW - Structural health monitoring
KW - wide linear measurement range
UR - https://www.scopus.com/pages/publications/105045723335
U2 - 10.1142/S2010135X26500232
DO - 10.1142/S2010135X26500232
M3 - 文章
AN - SCOPUS:105045723335
SN - 2010-135X
JO - Journal of Advanced Dielectrics
JF - Journal of Advanced Dielectrics
M1 - 2650023
ER -