Features of Vat-Photopolymerized Masters for Microfluidic Device Manufacturing

Author:

Gatto Maria Laura1,Mengucci Paolo2ORCID,Mattioli-Belmonte Monica34ORCID,Munteanu Daniel5ORCID,Nasini Roberto6,Tognoli Emanuele7ORCID,Denti Lucia7ORCID,Gatto Andrea7ORCID

Affiliation:

1. Department of Industrial Engineering and Mathematical Sciences (DIISM), Università Politecnica delle Marche, Via Brecce Bianche 12, 60131 Ancona, Italy

2. Department of Materials, Environmental Sciences and Urban Planning (SIMAU), Università Politecnica delle Marche, Via Brecce Bianche 12, 60131 Ancona, Italy

3. Department of Clinical and Molecular Sciences, Università Politecnica delle Marche, Via Tronto 10/a, 60126 Ancona, Italy

4. INSTM, National Consortium of Materials Science and Technology, Via G. Giusti 9, 50121 Florence, Italy

5. Material Science Department, Transilvania University of Brasov, 29 Eroilor Blvd., 500036 Brasov, Romania

6. Prosilas S.r.l., Via Terracini 14, 60212 Civitanova Marche, Italy

7. Department of Engineering “Enzo Ferrari”, Università di Modena e Reggio Emilia, Via P. Vivarelli 10, 41125 Modena, Italy

Abstract

The growing interest in advancing microfluidic devices for manipulating fluids within micrometer-scale channels has prompted a shift in manufacturing practices, moving from single-component production to medium-size batches. This transition arises due to the impracticality of lab-scale manufacturing methods in accommodating the increased demand. This experimental study focuses on the design of master benchmarks 1–5, taking into consideration critical parameters such as rib width, height, and the relative width-to-height ratio. Notably, benchmarks 4 and 5 featured ribs that were strategically connected to the inlet, outlet, and reaction chamber of the master, enhancing their utility for subsequent replica production. Vat photopolymerization was employed for the fabrication of benchmarks 1–5, while replicas of benchmarks 4 and 5 were generated through polydimethylsiloxane casting. Dimensional investigations of the ribs and channels in both the master benchmarks and replicas were conducted using an optical technique validated through readability analysis based on the Michelson global contrast index. The primary goal was to evaluate the potential applicability of vat photopolymerization technology for efficiently producing microfluidic devices through a streamlined production process. Results indicate that the combination of vat photopolymerization followed by replication is well suited for achieving a minimum rib size of 25 µm in width and an aspect ratio of 1:12 for the master benchmark.

Publisher

MDPI AG

Subject

Bioengineering

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