Utilize este identificador para referenciar este registo: https://hdl.handle.net/1822/81662

TítuloWater peel-off transfer of electronically enhanced, paper-based laser-induced graphene for wearable electronics
Autor(es)Pinheiro, Tomás
Correia, Ricardo
Morais, Maria
Coelho, João
Fortunato, Elvira
Sales, M. G. F.
Marques, Ana C.
Martins, Rodrigo
Palavras-chavelaser-induced graphene
paper
transfer methodologies
wearable electronics
electrochemical sensors
strain sensors
microsupercapacitors
Data16-Nov-2022
EditoraAmerican Chemical Society
RevistaACS Nano
CitaçãoPinheiro, T., Correia, R., Morais, M., Coelho, J., Fortunato, E., Sales, M. G. F., … Martins, R. (2022, November 16). Water Peel-Off Transfer of Electronically Enhanced, Paper-Based Laser-Induced Graphene for Wearable Electronics. ACS Nano. American Chemical Society (ACS). http://doi.org/10.1021/acsnano.2c07596
Resumo(s)Laser-induced graphene (LIG) has gained preponderance in recent years, as a very attractive material for the fabrication and patterning of graphitic structures and electrodes, for multiple applications in electronics. Typically, polymeric substrates, such as polyimide, have been used as precursor materials, but other organic, more sustainable, and accessible precursor materials have emerged as viable alternatives, including cellulose substrates. However, these substrates have lacked the conductive and chemical properties achieved by conventional LIG precursor substrates and have not been translated into fully flexible, wearable scenarios. In this work, we expand the conductive properties of paper-based LIG, by boosting the graphitization potential of paper, through the introduction of external aromatic moieties and meticulous control of laser fluence. Colored wax printing over the paper substrates introduces aromatic chemical structures, allowing for the synthesis of LIG chemical structures with sheet resistances as low as 5 Ω·sq–1, translating to an apparent conductivity as high as 28.2 S·cm–1. Regarding chemical properties, ID/IG ratios of 0.28 showcase low defect densities of LIG chemical structures and improve on previous reports on paper-based LIG, where sheet resistance has been limited to values around 30 Ω·sq–1, with more defect dense and less crystalline chemical structures. With these improved properties, a simple transfer methodology was developed, based on a water-induced peel-off process that efficiently separates patterned LIG structures from the native paper substrates to conformable, flexible substrates, harnessing the multifunctional capabilities of LIG toward multiple applications in wearable electronics. Proof-of concept electrodes for electrochemical sensors, strain sensors, and in-plane microsupercapacitors were patterned, transferred, and characterized, using paper as a high-value LIG precursor for multiples scenarios in wearable technologies, for improved sustainability and accessibility of such applications.
TipoArtigo
URIhttps://hdl.handle.net/1822/81662
DOI10.1021/acsnano.2c07596
ISSN1936-0851
Versão da editorahttps://pubs.acs.org/doi/10.1021/acsnano.2c07596
Arbitragem científicayes
AcessoAcesso restrito UMinho
Aparece nas coleções:CEB - Publicações em Revistas/Séries Internacionais / Publications in International Journals/Series

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