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3D-printed flexible energy harvesting devices designed using non-layered two-dimensional natural tourmaline silicates.

Authors :
Mahapatra, Preeti Lata
Tromer, Raphael
Jayakumar, Anjali
Costin, Gelu
Lahiri, Basudev
Nair, Rahul R.
Roy, Debmalya
Roy, Ajit K.
Pandey, Prafull
Galvao, Douglas S.
Tiwary, Chandra Sekhar
Source :
Journal of Materials Chemistry C; 3/14/2024, Vol. 12 Issue 10, p3418-3429, 12p
Publication Year :
2024

Abstract

Sustainable energy solutions require high-performance and widely available materials, which could be easily engineered/scaled up to the required dimensions. Natural silicates, being environmentally stable and abundantly accessible, emerge as promising candidates for the development of energy devices. Here, we demonstrate the synthesis of two-dimensional (2D), non-layered tourmaline silicates (T-silicates) through an easily scalable liquid-phase exfoliation method. The 2D T-silicate is used to design fabric-based energy harvesting devices and cellulose-based 3D-printed structures for flexible electronics. The 2D T-silicate energy harvesting device, which is made of fabric, generates a voltage of approximately 10 V when it is tapped with a force of approximately 8.8 N at room temperature. At slightly higher temperatures, specifically at 50 °C, a small force of only 0.98 N can produce around 9.2 V. The 3D printed device with mesh design also produced ∼3 V (peak to peak) upon tapping with a finger. The theoretically estimated piezoelectric coefficient was 4.3 × 10<superscript>−10</superscript> C m<superscript>−2</superscript>, and the flexoelectric coefficient was 0.3 nC m<superscript>−2</superscript>. The study shows that ultrathin T-silicates can be used not only in fabrics but also in 3D printing for energy harvesting applications. This innovative work opens up new possibilities for sustainable energy solutions by combining advanced materials with state-of-the-art fabrication techniques. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507526
Volume :
12
Issue :
10
Database :
Complementary Index
Journal :
Journal of Materials Chemistry C
Publication Type :
Academic Journal
Accession number :
175915730
Full Text :
https://doi.org/10.1039/d3tc04167k