Advanced Micromolding Approach toward Scaling-Up Smart Hydrogel Microvalves

Abstract Smart hydrogel valves are a promising technology for autonomous process control. At the macroscale, hydrogel valves offer high flow rates with slow response times, whereas hydrogel microvalves offer low flow rates with fast response times. This contradiction limits the practical applicability of these valves, particularly in industry. Scaling-up refers to the process of transferring the benefits and results of microfluidics from the laboratory scale to the production scale. In this paper, we present advanced fabrication methods and corresponding promising concepts toward scaling-up responsive hydrogel microvalves to achieve higher throughput while maintaining fast response times. Using selective laser-induced etching (SLE), precise three-dimensional (3D) microfluidic structures and corresponding molds can be produced from fused silica, allowing hydrogel to be molded and anchored directly within the microchannel. This method enables the sizing-up of hydrogel microstructures in both horizontal and vertical directions. The influence of this scaling, in the form of various hydrogel dimensions up to 1500 μm, was investigated with regard to their suitability for an autonomous hydrogel valve. As a proof-of-principle, three hydrogel valves with different depths were fabricated using this method, whereby the response time decreases with increasing depth while the flow rate is increased simultaneously.

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Journal
Industrial & Engineering Chemistry Research
Published
2026-09-09
DOI
https://doi.org/10.1021/acs.iecr.6c01285
Primary Topic
3D Printing in Biomedical Research
Type
article
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Advanced Micromolding Approach toward Scaling-Up Smart Hydrogel Microvalves

Kathrin Marina Eckert, Ирина Смирнова, Lukas Rennpferdt, Hoc Khiem Trieu et al.
Industrial & Engineering Chemistry Research
3D Printing in Biomedical Research
article

Advanced Micromolding Approach toward Scaling-Up Smart Hydrogel Microvalves

Kathrin Marina Eckert, Ирина Смирнова, Lukas Rennpferdt, Hoc Khiem Trieu, Carl Linus Ehlert
article en

Abstract

Abstract Smart hydrogel valves are a promising technology for autonomous process control. At the macroscale, hydrogel valves offer high flow rates with slow response times, whereas hydrogel microvalves offer low flow rates with fast response times. This contradiction limits the practical applicability of these valves, particularly in industry. Scaling-up refers to the process of transferring the benefits and results of microfluidics from the laboratory scale to the production scale. In this paper, we present advanced fabrication methods and corresponding promising concepts toward scaling-up responsive hydrogel microvalves to achieve higher throughput while maintaining fast response times. Using selective laser-induced etching (SLE), precise three-dimensional (3D) microfluidic structures and corresponding molds can be produced from fused silica, allowing hydrogel to be molded and anchored directly within the microchannel. This method enables the sizing-up of hydrogel microstructures in both horizontal and vertical directions. The influence of this scaling, in the form of various hydrogel dimensions up to 1500 μm, was investigated with regard to their suitability for an autonomous hydrogel valve. As a proof-of-principle, three hydrogel valves with different depths were fabricated using this method, whereby the response time decreases with increasing depth while the flow rate is increased simultaneously.

Industrial & Engineering Chemistry Research
Universität Hamburg (DE), United Nations University Institute for Water, Environment, and Health (CA), Hamburg University of Technology (DE)
Industry, innovation and infrastructure
Openalex Percentile: Top 20%
3D Printing in Biomedical Research
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Advanced Micromolding Approach toward Scaling-Up Smart Hydrogel Microvalves — Kathrin Marina Eckert, Ирина Смирнова, et al. · Industrial & Engineering Chemistry Research (2026) | TGRS Research Map | TGRS