TY - JOUR
T1 - Self-poled piezoelectric charge generator–separator for a hybrid self-charging piezo-supercapacitor
AU - Ghosal, Chetana
AU - Teli, Aviraj M.
AU - Ghosh, Sujoy Kumar
AU - Beknalkar, Sonali A.
AU - Mahanty, Biswajit
AU - Roy, Krittish
AU - Han, Jeong In
AU - Seo, Soonmin
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/12/10
Y1 - 2025/12/10
N2 - On-demand, compact, self-powered electronics have attracted interest in hybrid piezoelectric–supercapacitors as alternatives to traditional batteries. However, their practical implementation is limited by the requirement of high-field external poling for the piezoelectric layer, the need for separate charge generation and storage layers, and poor self-charging stability. To address these challenges, we report a fully self-poled piezoelectric-supercapacitor hybrid device based on a cerium-doped porous β-PVDF composite film. The film simultaneously functions as mechanical energy harvester and an electrolyte-permeable separator enabling concurrent charge generation and storage within a single flexible structure. Cerium doping induces electroactive β-phase formation (∼89 %) through hydrogen bonding and dipole alignment, thereby eliminating the need for external electrical poling. Under biomechanical motion, the film generates a peak output voltage of 13.6 V and a short-circuit current of 0.5 μA, sufficient to power small electronic components. The hybrid device, assembled with MnO2 nanowire electrodes and a PVA-H3PO4 gel electrolyte, self-charges up to 690 mV under biomechanical motion and delivers an areal capacitance of 10.51 mF/cm2 and an energy density of 1.46 µWh/cm2, with excellent cyclic stability. This self-poled, dual-functional PVDF-based piezoelectric separator offers a scalable and environmentally friendly route towards next-generation hybrid energy harvesting devices.
AB - On-demand, compact, self-powered electronics have attracted interest in hybrid piezoelectric–supercapacitors as alternatives to traditional batteries. However, their practical implementation is limited by the requirement of high-field external poling for the piezoelectric layer, the need for separate charge generation and storage layers, and poor self-charging stability. To address these challenges, we report a fully self-poled piezoelectric-supercapacitor hybrid device based on a cerium-doped porous β-PVDF composite film. The film simultaneously functions as mechanical energy harvester and an electrolyte-permeable separator enabling concurrent charge generation and storage within a single flexible structure. Cerium doping induces electroactive β-phase formation (∼89 %) through hydrogen bonding and dipole alignment, thereby eliminating the need for external electrical poling. Under biomechanical motion, the film generates a peak output voltage of 13.6 V and a short-circuit current of 0.5 μA, sufficient to power small electronic components. The hybrid device, assembled with MnO2 nanowire electrodes and a PVA-H3PO4 gel electrolyte, self-charges up to 690 mV under biomechanical motion and delivers an areal capacitance of 10.51 mF/cm2 and an energy density of 1.46 µWh/cm2, with excellent cyclic stability. This self-poled, dual-functional PVDF-based piezoelectric separator offers a scalable and environmentally friendly route towards next-generation hybrid energy harvesting devices.
KW - Cerium nitrate
KW - Energy harvester
KW - Energy storage
KW - MnO nanowire
KW - Piezoelectric
KW - PVDF
KW - Supercapacitor
UR - https://www.scopus.com/pages/publications/105022652249
U2 - 10.1016/j.jallcom.2025.185180
DO - 10.1016/j.jallcom.2025.185180
M3 - Article
AN - SCOPUS:105022652249
SN - 0925-8388
VL - 1048
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 185180
ER -