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Review

Photopolymer Flexographic Printing Plate Mold for PDMS Microfluidic Manufacture

by
Ana Belén Peñaherrera-Pazmiño
1,*,
Gustavo Iván Rosero
2,
Maximiliano Pérez
2,3,4 and
Betiana Lerner
2,3,4,*
1
Centro de Investigación Biomédica (CENBIO), Facultad de Ciencias de la Salud Eugenio Espejo, Universidad UTE, Quito 170527, Ecuador
2
Special Coatings and Nanostructures Engineering (IREN), National Technological University, Buenos Aires 1706, Argentina
3
Collaborative Research Institute Intelligent Oncology (CRIION), Hermann-Herder-Straße 4, 79104 Freiburg im Breisgau, Germany
4
Department of Electrical and Computer Engineering, Florida International University, Miami, FL 33174, USA
*
Authors to whom correspondence should be addressed.
Polymers 2025, 17(13), 1723; https://doi.org/10.3390/polym17131723
Submission received: 5 May 2025 / Revised: 16 June 2025 / Accepted: 18 June 2025 / Published: 20 June 2025
(This article belongs to the Special Issue Advances in Functional Polymer Materials for Biomedical Applications)

Abstract

Flexographic printing, traditionally used in the packaging industry, has emerged as a promising technology for microfluidic device fabrication due to enabling high resolution and being commercially available at a low cost compared to conventional techniques. This review explores the adaptation of a photopolymer flexographic printing plate mold (FMold) for microfluidics, examining its advantages, challenges, and applications. It offers a state-of-the-art view of the application of FMold for microfluidic systems, which offers a unique opportunity in terms of cost-effectiveness, scalability, and rapid prototyping. Applications are diverse: FMold has enabled the fabrication of microfluidic devices used in enhanced oil recovery to prepare rock-on-a-chip models, droplet generation and storage, suspension cell culture, monoclonal antibody production, complex cell differentiation pattern creation, phage screening, drug screening, cell detection, and cancer stem cell culture. Since its first appearance in 2018, FMold has been utilized in 50 publications in different laboratories around the world. Key advancements, current research trends, and future prospects are discussed to provide a comprehensive overview of this evolving tool.
Keywords: flexography; microfluidics; sustainable development goal 3; sustainable development goal 10; biomedicine; cell culture flexography; microfluidics; sustainable development goal 3; sustainable development goal 10; biomedicine; cell culture
Graphical Abstract

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MDPI and ACS Style

Peñaherrera-Pazmiño, A.B.; Rosero, G.I.; Pérez, M.; Lerner, B. Photopolymer Flexographic Printing Plate Mold for PDMS Microfluidic Manufacture. Polymers 2025, 17, 1723. https://doi.org/10.3390/polym17131723

AMA Style

Peñaherrera-Pazmiño AB, Rosero GI, Pérez M, Lerner B. Photopolymer Flexographic Printing Plate Mold for PDMS Microfluidic Manufacture. Polymers. 2025; 17(13):1723. https://doi.org/10.3390/polym17131723

Chicago/Turabian Style

Peñaherrera-Pazmiño, Ana Belén, Gustavo Iván Rosero, Maximiliano Pérez, and Betiana Lerner. 2025. "Photopolymer Flexographic Printing Plate Mold for PDMS Microfluidic Manufacture" Polymers 17, no. 13: 1723. https://doi.org/10.3390/polym17131723

APA Style

Peñaherrera-Pazmiño, A. B., Rosero, G. I., Pérez, M., & Lerner, B. (2025). Photopolymer Flexographic Printing Plate Mold for PDMS Microfluidic Manufacture. Polymers, 17(13), 1723. https://doi.org/10.3390/polym17131723

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