Use este identificador para citar ou linkar para este item: https://repositorio.ifg.edu.br/handle/prefix/2817
Tipo: Pôster
Título: Stencil printing of microfluidic paper-based analytical deevices to teach redox reactions for high school students
Título(s) alternativo(s): Impressão em estêncil de dispositivos microfluidicos baseados em papel para ensinar reações redox para alunos de ensino médio
Autor(es): Casanova, Monise
Neves, César
Gomes, Paulo
Silva, Ana Clara
Rocha, Danielly
Coltro, Wendell
Resumo: Microfluidic paper-based analytical devices (μPADs) associated with colorimetric detection are attractive for applications in analytical chemistry due to their portability and instrumental simplicity. This kind of device has become popular to teach chemistry for high school students. This study describes the construction of μPADs using stencil printing technique dedicated to teaching redox reactions in high school classes. The layout with a circular sampling zone (5mm diameter) and 2 colorimetric detection zones (5-mm diameter) connected by 2 microfluidic channels (Y format) (2mm long) were drawn in Corel Draw graphics software. Then, a chromatographic paper substrate was laminated using polyester with the aid of a press at 140°C for 20s. Then, a layer of vinyl adhesive was added to the paper substrate using a spatula. The paper was cut by a paper cutter. Then, the adhesive edges of the device were removed, keeping the microfluidic geometry covered with the adhesive patterns. Finally, glass varnish was applied to create hydrophobic barriers and dried at 25°C for 30 min. The channel width was tested and optimal width was 2.5 mm wide. As a proof-of-concept, a redox reaction with sodium hypochlorite (SH) and N-N – diethyl p phenylenediamine (DPD) was chosen. The optimal volume of DPD chromogen was 1.6 µL. The complete filling of the device was achieved adding 18 µL of SH solution. The SH solution (colorless) reacts with the DPD solution (15 mmolL-1) (red) and generates a purple product. Then, 18 µL of a 1.1% v/v commercial SH solution was added into the sampling zone. After spontaneous transport through microfluidic channels, the analyte reacted with DPD reagent, generating a purple-colored product detected by naked eye. With successful preliminary results, the device will be explored to teach redox reactions and microfluidics and enables the demonstration of qualitative analysis, allowing the student to understand if the target analyte is present in the sample or not.
Abstract: Microfluidic paper-based analytical devices (μPADs) associated with colorimetric detection are attractive for applications in analytical chemistry due to their portability and instrumental simplicity. This kind of device has become popular to teach chemistry for high school students. This study describes the construction of μPADs using stencil printing technique dedicated to teaching redox reactions in high school classes. The layout with a circular sampling zone (5mm diameter) and 2 colorimetric detection zones (5-mm diameter) connected by 2 microfluidic channels (Y format) (2mm long) were drawn in Corel Draw graphics software. Then, a chromatographic paper substrate was laminated using polyester with the aid of a press at 140°C for 20s. Then, a layer of vinyl adhesive was added to the paper substrate using a spatula. The paper was cut by a paper cutter. Then, the adhesive edges of the device were removed, keeping the microfluidic geometry covered with the adhesive patterns. Finally, glass varnish was applied to create hydrophobic barriers and dried at 25°C for 30 min. The channel width was tested and optimal width was 2.5 mm wide. As a proof-of-concept, a redox reaction with sodium hypochlorite (SH) and N-N – diethyl p phenylenediamine (DPD) was chosen. The optimal volume of DPD chromogen was 1.6 µL. The complete filling of the device was achieved adding 18 µL of SH solution. The SH solution (colorless) reacts with the DPD solution (15 mmolL-1) (red) and generates a purple product. Then, 18 µL of a 1.1% v/v commercial SH solution was added into the sampling zone. After spontaneous transport through microfluidic channels, the analyte reacted with DPD reagent, generating a purple-colored product detected by naked eye. With successful preliminary results, the device will be explored to teach redox reactions and microfluidics and enables the demonstration of qualitative analysis, allowing the student to understand if the target analyte is present in the sample or not.
Palavras-chave: microfluidics
paper
CNPq: Química Analítica
Idioma: eng
País: Brasil
Editor: Instituto federal de Goias - Campus Senador Canedo
Citação: Casanova, M. et al. Stencil Printing of Microfluidic Paper-based Analytical Devices to Teach Redox Reactions for High School Students, Pittcon 2025
Tipo de Acesso: Acesso Aberto
URI: https://repositorio.ifg.edu.br/handle/prefix/2817
Data do documento: 4-Mar-2025
Aparece nas coleções:Eventos realizados extra IFG

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Arquivo Descrição TamanhoFormato 
2026termo_ana Claraautorizacao_rd_ifg.docxTermo de autorização Ana Clara182,75 kBMicrosoft Word XMLVisualizar/Abrir
2026termo_césar_autorizacao_rd_ifg.docxTermo de autorização César186,91 kBMicrosoft Word XMLVisualizar/Abrir
2026termo_paulo_autorizacao_rd_ifg.docxTermo de autorização Paulo176,8 kBMicrosoft Word XMLVisualizar/Abrir
resumo_pittcon 2025.pdfResumo do trabalho no evento Pittcon 2025136,31 kBAdobe PDFVisualizar/Abrir
2026_termo_Danielly Rocha_autorizacao_rd_ifg_assinado.pdfTermo de autorização Danielly Rocha249,54 kBAdobe PDFVisualizar/Abrir
2026_termoassin_Wendell_autorizacao_rd_ifg_assinado.pdfTermo de autorização Wendell208,18 kBAdobe PDFVisualizar/Abrir


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