Tiny molecular switch enables nature-inspired biomaterials for self-powered healthcare - 3rd September 2026 - Ministry of Science and Technology - Gazette Notification PDF
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Ministry of Science & Technology
Tiny molecular switch enables nature-inspired
biomaterials for self-powered healthcare
Posted On: 03 SEP 2026 5:12PM by PIB Delhi
A simple yet powerful molecular strategy to create highly efficient piezoelectric biomaterials using
peptides—the natural building blocks of proteins could help develop implantable medical devices that
power itself using body movements such as heartbeat, breathing, or walking
Piezoelectric materials are special materials that can convert mechanical force, such as pressing, bending,
or stretching, into electrical energy. This unique property is used in devices such as pressure sensors,
medical ultrasound devices, actuators, and self-powered energy-harvesting systems. However, most
commercially available piezoelectric materials are made from ceramics. Although they work well, most
conventional piezoelectric materials are brittle, environmentally unfriendly, and often unsuitable for use
inside the human body. Scientists have therefore been searching for safer, softer, and biocompatible
alternatives.
Researchers from the Centre for Nano and Soft Matter Sciences (CeNS), Bengaluru—an autonomous
institute under the Department of Science and Technology (DST), Government of India in collaboration
with the Indian Institute of Science Education and Research (IISER), Kolkata, and the Jawaharlal Nehru
Centre for Advanced Scientific Research (JNCASR), Bengaluru focused on peptides.
Despite being safe, biodegradable and biocompatible with tissues achieving strong piezoelectric
performance from peptide-based materials has remained a long-standing scientific challenge.
Using advanced techniques, the researchers discovered that the key lies not in changing the peptide itself,
but in controlling how the peptide molecules assemble. From various microscopic techniques such as
atomic force microscopy (AFM) and field emission scanning electron microscopy (FESEM), they found
that peptide molecules form nanofibers in water but exhibit no piezoelectric response. However,
introducing just one percent of a suitable co-solvent reorganized the molecules into a highly ordered
supramolecular arrangement, instantly switching on a strong piezoelectric response without altering the
peptide's chemical composition.
This transformation arises because the controlled chiral self-assembly aligns molecular dipoles into a non-
centrosymmetric structure—a fundamental structural requirement for piezoelectricity. This elegant
molecular approach demonstrates that simply controlling molecular self-assembly can activate or
deactivate electrical functionality in biomaterials.
The researchers revealed how subtle molecular reorganization aligns molecular dipoles into a non-
centrosymmetric structure that efficiently converts mechanical energy into electricity.
The engineered peptide nanomaterials exhibited a remarkably high piezoelectric coefficient of nearly 30
pm V⁻¹, demonstrating notable performance for a peptide-based material and highlighting their strong
potential for next-generation flexible, sustainable, and biocompatible energy-harvesting technologies.The discovery published in the journal Angewandte Chemie International Edition, provides a new
blueprint for designing sustainable functional biomaterials without chemically modifying the molecules
themselves. Such materials could one day power wearable electronics, implantable medical sensors,
electronic skin, biosensors, and other next-generation healthcare technologies by harvesting energy
directly from natural body movements. Beyond biomedical applications, this discovery also offers an
environmentally friendly alternative to conventional piezoelectric materials and contributes to the
development of sustainable soft electronics.
Fig: Schematic representation of the relation between chiroptical behaviour and piezoelectric response.
The research highlights India's growing strength in supramolecular chemistry, bringing together molecular
design, advanced nanoscale characterization, and computational simulations, to solve complex scientific
challenges.
The research was led by Dr Goutam Ghosh at CeNS, together with his PhD scholar Ms Aparna Ramesh, in
collaboration with Mr Sarbajit Layek, Prof. Neelanjana Sengupta (IISER Kolkata), and Mr Tarak Nath
Das (JNCASR).
Publication Link: https://doi.org/10.1002/anie.3135255
For further details, please contact Dr. Goutam Ghosh at gghosh@cens.res.in
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