CeNS, IISER and JNCASR Develop Peptide-Based Piezoelectric Biomaterial
Researchers at CeNS Bengaluru, IISER Kolkata, and JNCASR Bengaluru develop a peptide-based piezoelectric biomaterial with potential biomedical applications. The reported findings link changes in molecular arrangement of the same peptide to distinct piezoelectric functionality and list nanoscale characterisation techniques used.
Peptide-Based Piezoelectric Biomaterial:
| Dimension | Key Details |
|---|---|
| Piezoelectricity | Piezoelectricity is the phenomenon where mechanical stress generates electric charge in certain solids such as ceramics, crystals, and biological materials, including DNA, bone, and proteins. |
| Core finding | While the chemical composition stays the same, differences in molecular arrangement change the material’s functionality. |
| Key observation: water dissolution | When dissolved in water, peptide molecules form nanofibers and show no detectable piezoelectric response. |
| Key observation: co-solvent effect | With about 1% co-solvent, peptide molecules reorganise into a supramolecular structure that displays a strong piezoelectric response. |
| Self-assembly | Peptide molecules form ordered supramolecular structures on their own, and the same peptide, assembled differently, exhibits distinct electrical properties. |
| Techniques used | Researchers employ nanoscale characterisation techniques: Atomic Force Microscopy (AFM), Field Emission Scanning Electron Microscopy (FESEM), and computational simulations. |
| AFM | Atomic Force Microscopy (AFM) examines surface and topographical features at the nanoscale. |
| FESEM | Field Emission Scanning Electron Microscopy (FESEM) provides high-resolution imaging of nanostructures. |
| Computational simulations | Computational simulations help elucidate molecular organisation and interactions. |
| Potential uses | Potential uses comprise implantable medical sensors, biosensors, electronic skin, wearable health-monitoring devices, and energy harvesting. |
| Mechanism | Natural body movements, such as heartbeat, breathing, and walking, cause mechanical deformation, and peptide piezoelectric materials convert this deformation into electrical energy. |