Design Principles for Laser-Printed Macrofluidics

Author:

Gome Gilad12ORCID,Benny Ofra3ORCID,Shoseyov Oded1ORCID,Giron Jonathan2ORCID

Affiliation:

1. Department of Plant Sciences, The Robert H. Smith Faculty of Agriculture, Food and Environment, The Hebrew University of Jerusalem, Rehovot 7610001, Israel

2. Sammy Offer School of Communications, Reichman University, Herzliya 4610101, Israel

3. Faculty of Medicine, School of Pharmacy, Institute for Drug Research (IDR), The Hebrew University of Jerusalem, Jerusalem 9112102, Israel

Abstract

This paper presents a novel method for fabricating fluidic circuits using laser printing technology. The method allows for rapid prototyping of macrofluidic devices with control over fluid manipulation and environmental conditions. We employed a high-resolution laser cutter to etch fluidic channels into various substrates, optimizing parameters such as laser power, speed, and substrate material. Our results demonstrate excellent performance in controlling fluid flow and maintaining environmental conditions, handling a wide range of fluids and flow rates. The devices were tested in multiple settings such as with high school students and in research laboratories in universities. We tested the laser-printed macrofluidcs mechanically for durability. We present previous works in microbiology with plants, microbial, and mammalian cell lines showing reliable operation with minimal leakage and consistent fluid dynamics. The versatility and scalability of this approach make it a promising tool for advancing research and innovation in fluidics, providing a robust platform for growing, manipulating, and experimenting with diverse biological systems from cells to whole organisms. We conclude that laser-printed macrofluidics can significantly contribute to fields such as biomedical research, synthetic biology, tissue engineering, and STEM education.

Funder

Israeli Ministry of Innovation, Science and Technology, Levi Eshkol Scholarship

Israeli Innovation Authority through the cultivated meat consortium

Publisher

MDPI AG

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