Abstract

The development of a method for integrating highly efficient energy conversion materials onto stretchable, biocompatible rubbers could yield breakthroughs in implantable or wearable energy harvesting systems. Being electromechanically coupled, piezoelectric crystals represent a particularly interesting subset of smart materials that function as sensors/actuators, bioMEMS devices, and energy converters. Yet, the crystallization of these materials generally requires high temperatures for maximally efficient performance, rendering them incompatible with temperature-sensitive plastics and rubbers. Here, we overcome these limitations by presenting a scalable and parallel process for transferring crystalline piezoelectric nanothick ribbons of lead zirconate titanate from host substrates onto flexible rubbers over macroscopic areas. Fundamental characterization of the ribbons by piezo-force microscopy indicates that their electromechanical energy conversion metrics are among the highest reported on a flexible medium. The excellent performance of the piezo-ribbon assemblies coupled with stretchable, biocompatible rubber may enable a host of exciting avenues in fundamental research and novel applications.

Keywords

Materials sciencePiezoelectricityEnergy harvestingBiocompatible materialEnergy transformationNanotechnologyNatural rubberCharacterization (materials science)Smart materialActuatorLead zirconate titanateMechanical energyElastomerComposite materialOptoelectronicsEnergy (signal processing)Computer scienceFerroelectricity

Affiliated Institutions

Related Publications

Publication Info

Year
2010
Type
article
Volume
10
Issue
2
Pages
524-528
Citations
486
Access
Closed

External Links

Social Impact

Social media, news, blog, policy document mentions

Citation Metrics

486
OpenAlex

Cite This

Yi Qi, Noah T. Jafferis, Kenneth P. Lyons et al. (2010). Piezoelectric Ribbons Printed onto Rubber for Flexible Energy Conversion. Nano Letters , 10 (2) , 524-528. https://doi.org/10.1021/nl903377u

Identifiers

DOI
10.1021/nl903377u