| Literature DB >> 32612343 |
Qi Zhang1, Jincheng Lei1, Yizheng Chen1, Yongji Wu1, Hai Xiao1.
Abstract
This letter reports a novel fused silica microfluidic device with pressure sensing capability that is fabricated by integrated additive and subtractive manufacturing (IASM) method. The sensor consists of a capillary and a 3D printed glass reservoir, where the reservoir volume change under pressure manifests liquid level deviation inside the capillary, thus realizing the conversion between small pressure change into large liquid level variation. Thanks to the design flexibility of this unique IASM method, the proposed microfluidic device is fabricated with liquid-in-glass thermometer configuration, where the reservoir is sealed following a novel 3D printing assisted glass bonding process. And liquid level is interrogated by a fiber-optic sensor based on multimode interference (MMI) effect. This proposed microfluidic device is attractive for chemical and biomedical sensing because it is flexible in design, and maintains good chemical and mechanical stability, and adjustable sensitivity and range.Entities:
Keywords: Integrated Additive and Subtractive Manufacturing; fiber-optic sensing; glass 3D printing; microfluidics; multi-laser processing
Year: 2020 PMID: 32612343 PMCID: PMC7328953 DOI: 10.1109/lpt.2020.2977324
Source DB: PubMed Journal: IEEE Photonics Technol Lett ISSN: 1041-1135 Impact factor: 2.468