Co-Assembled Piezoelectric Nanofibers as Self-Powered Sensors for Human Physiological Signals

Abstract Soft supramolecular materials have emerged as promising alternatives to conventional inorganic systems for next-generation bioelectronic and self-powered sensing applications due to their intrinsic flexibility, biocompatibility, and mechanical compliance. Herein, we report a coassembled piezoelectric nanofibrous organogel system constructed from a functionalized peptide–appended pyrene (Py–P) donor and a core-substituted naphthalene diimide (c-NDI) acceptor. While the individual organogels exhibit relatively lower piezoelectric response, their coassembled state at an equimolar ratio displays a remarkable enhancement in piezoelectric performance. The engineered donor–acceptor coassembly produces a highly ordered supramolecular architecture with a piezoelectric coefficient of 55 pm/V, approaching the upper limit of reported supramolecular organic piezoelectric materials and convincingly demonstrating the effectiveness of donor–acceptor engineering for high-performance piezoelectric energy harvesting. Combined experimental investigations and theoretical analyses consistently demonstrate the origin of the amplified piezoelectricity in the coassembled system. Leveraging this high piezoelectric response, self-powered devices were fabricated and successfully employed for the detection of human physiological signals, including finger movements and highly sensitive arterial pulse signals. The results demonstrate that this coassembled nanofiber-based supramolecular system represents a potent soft piezoelectric material platform for self-powered physiological sensing and wearable bioelectronic applications.

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Publication Details

Journal
The Journal of Physical Chemistry C
Published
2026-09-26
DOI
https://doi.org/10.1021/acs.jpcc.6c03185
Primary Topic
Supramolecular Self-Assembly in Materials
Type
article
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article

Co-Assembled Piezoelectric Nanofibers as Self-Powered Sensors for Human Physiological Signals

Nikhil Ranjan Jana, Jayanta Dolai, Soumyajit Hazra, Niladri Hazra et al.
The Journal of Physical Chemistry C
Supramolecular Self-Assembly in Materials
article

Co-Assembled Piezoelectric Nanofibers as Self-Powered Sensors for Human Physiological Signals

Nikhil Ranjan Jana, Jayanta Dolai, Soumyajit Hazra, Niladri Hazra, Kousik Gayen, Ayan Datta, Buddhadev Mukherjee, Arindam Banerjee, Supratim Bose, Anupam Ghosh
article en

Abstract

Abstract Soft supramolecular materials have emerged as promising alternatives to conventional inorganic systems for next-generation bioelectronic and self-powered sensing applications due to their intrinsic flexibility, biocompatibility, and mechanical compliance. Herein, we report a coassembled piezoelectric nanofibrous organogel system constructed from a functionalized peptide–appended pyrene (Py–P) donor and a core-substituted naphthalene diimide (c-NDI) acceptor. While the individual organogels exhibit relatively lower piezoelectric response, their coassembled state at an equimolar ratio displays a remarkable enhancement in piezoelectric performance. The engineered donor–acceptor coassembly produces a highly ordered supramolecular architecture with a piezoelectric coefficient of 55 pm/V, approaching the upper limit of reported supramolecular organic piezoelectric materials and convincingly demonstrating the effectiveness of donor–acceptor engineering for high-performance piezoelectric energy harvesting. Combined experimental investigations and theoretical analyses consistently demonstrate the origin of the amplified piezoelectricity in the coassembled system. Leveraging this high piezoelectric response, self-powered devices were fabricated and successfully employed for the detection of human physiological signals, including finger movements and highly sensitive arterial pulse signals. The results demonstrate that this coassembled nanofiber-based supramolecular system represents a potent soft piezoelectric material platform for self-powered physiological sensing and wearable bioelectronic applications.

The Journal of Physical Chemistry C
Indian Association for the Cultivation of Science (IN)
Affordable and clean energy
Openalex Percentile: Top 22%
Supramolecular Self-Assembly in Materials
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