Cargando…

Optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network

The dielectric elastomer generator (DEG) has attracted significant attention in the past decade for harvesting energy from reciprocating mechanical motion owing to its variable capacitance under tension. However, the challenge of conceiving novel DEGs with high energy harvesting performance should b...

Descripción completa

Detalles Bibliográficos
Autores principales: Gong, Min, Song, Feilong, Li, Hejian, Lin, Xiang, Wang, Jiaping, Zhang, Liang, Wang, Dongrui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9033487/
https://www.ncbi.nlm.nih.gov/pubmed/35478628
http://dx.doi.org/10.1039/d1ra01433a
_version_ 1784692900798398464
author Gong, Min
Song, Feilong
Li, Hejian
Lin, Xiang
Wang, Jiaping
Zhang, Liang
Wang, Dongrui
author_facet Gong, Min
Song, Feilong
Li, Hejian
Lin, Xiang
Wang, Jiaping
Zhang, Liang
Wang, Dongrui
author_sort Gong, Min
collection PubMed
description The dielectric elastomer generator (DEG) has attracted significant attention in the past decade for harvesting energy from reciprocating mechanical motion owing to its variable capacitance under tension. However, the challenge of conceiving novel DEGs with high energy harvesting performance should be addressed. In this work, azobenzene molecules with strong polarity were synthesized and chemically grafted onto a hydroxyl-terminated polydimethylsiloxane (PDMS) network through a simple one-step process, offering a robust, molecularly homogenous silicone rubber. In addition, dimethyl silicone oil (DMSO) plasticizer was simultaneously added to reduce the mechanical modulus of the composite. The loading content of DMSO was firstly optimized in terms of the mechanical and dielectric properties of the resultant azo-g-PDMS/DMSO elastomers. Then, the effects of azobenzene loading on the morphology, and mechanical, dielectric and electric generation performances were thoroughly investigated. Overall, the dielectric permittivity displayed a rising trend with the increase of the azobenzene content while the breakdown strength increased initially and then decreased. The breakdown strength could reach as high as 73 V μm(−1) by grafting with 7 phr of azobenzene while maintaining a relatively low mechanical modulus. Meanwhile, the as-prepared azo-g-PDMS/DMSO films exhibited enhanced energy harvesting density (0.69 mJ cm(−3)) and electromechanical conversion efficiency (5.01%) at a bias voltage of 1500 V, which were 2 and 2.5 times as much as those of the azobenzene-free matrix. This work provides ideas for future applications of DEG with high energy harvesting performance.
format Online
Article
Text
id pubmed-9033487
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90334872022-04-26 Optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network Gong, Min Song, Feilong Li, Hejian Lin, Xiang Wang, Jiaping Zhang, Liang Wang, Dongrui RSC Adv Chemistry The dielectric elastomer generator (DEG) has attracted significant attention in the past decade for harvesting energy from reciprocating mechanical motion owing to its variable capacitance under tension. However, the challenge of conceiving novel DEGs with high energy harvesting performance should be addressed. In this work, azobenzene molecules with strong polarity were synthesized and chemically grafted onto a hydroxyl-terminated polydimethylsiloxane (PDMS) network through a simple one-step process, offering a robust, molecularly homogenous silicone rubber. In addition, dimethyl silicone oil (DMSO) plasticizer was simultaneously added to reduce the mechanical modulus of the composite. The loading content of DMSO was firstly optimized in terms of the mechanical and dielectric properties of the resultant azo-g-PDMS/DMSO elastomers. Then, the effects of azobenzene loading on the morphology, and mechanical, dielectric and electric generation performances were thoroughly investigated. Overall, the dielectric permittivity displayed a rising trend with the increase of the azobenzene content while the breakdown strength increased initially and then decreased. The breakdown strength could reach as high as 73 V μm(−1) by grafting with 7 phr of azobenzene while maintaining a relatively low mechanical modulus. Meanwhile, the as-prepared azo-g-PDMS/DMSO films exhibited enhanced energy harvesting density (0.69 mJ cm(−3)) and electromechanical conversion efficiency (5.01%) at a bias voltage of 1500 V, which were 2 and 2.5 times as much as those of the azobenzene-free matrix. This work provides ideas for future applications of DEG with high energy harvesting performance. The Royal Society of Chemistry 2021-05-26 /pmc/articles/PMC9033487/ /pubmed/35478628 http://dx.doi.org/10.1039/d1ra01433a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Gong, Min
Song, Feilong
Li, Hejian
Lin, Xiang
Wang, Jiaping
Zhang, Liang
Wang, Dongrui
Optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network
title Optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network
title_full Optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network
title_fullStr Optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network
title_full_unstemmed Optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network
title_short Optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network
title_sort optimizing energy harvesting performance of silicone elastomers by molecular grafting of azobenzene to the macromolecular network
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9033487/
https://www.ncbi.nlm.nih.gov/pubmed/35478628
http://dx.doi.org/10.1039/d1ra01433a
work_keys_str_mv AT gongmin optimizingenergyharvestingperformanceofsiliconeelastomersbymoleculargraftingofazobenzenetothemacromolecularnetwork
AT songfeilong optimizingenergyharvestingperformanceofsiliconeelastomersbymoleculargraftingofazobenzenetothemacromolecularnetwork
AT lihejian optimizingenergyharvestingperformanceofsiliconeelastomersbymoleculargraftingofazobenzenetothemacromolecularnetwork
AT linxiang optimizingenergyharvestingperformanceofsiliconeelastomersbymoleculargraftingofazobenzenetothemacromolecularnetwork
AT wangjiaping optimizingenergyharvestingperformanceofsiliconeelastomersbymoleculargraftingofazobenzenetothemacromolecularnetwork
AT zhangliang optimizingenergyharvestingperformanceofsiliconeelastomersbymoleculargraftingofazobenzenetothemacromolecularnetwork
AT wangdongrui optimizingenergyharvestingperformanceofsiliconeelastomersbymoleculargraftingofazobenzenetothemacromolecularnetwork