Literature DB >> 33090275

Eliminating air bubble in microfluidic systems utilizing integrated in-line sloped microstructures.

Can Huang1, Jose A Wippold2, Dimitra Stratis-Cullum3, Arum Han4,5,6,7.   

Abstract

In most microfluidic systems, formation and accumulation of air and other gas bubbles can be detrimental to their operation. Air bubbles in a microfluidic channel induce a pressure profile fluctuation and therefore disturb the stability of the system. Once an air bubble is generated, it is also extremely difficult to remove such bubbles from the microfluidic systems. In tissue and cell culture microfluidic systems, a single air bubble can completely shear off cells that are being cultured. Air bubbles can be especially problematic in microfluidic systems that have to operate for long periods of time, since completely eliminating the generation of air bubbles for prolonged periods of time, where a single air bubble can ruin an entire multi-day/multi-week experiment, is extremely challenging. Several in-line and off-chip bubble traps have been developed so far, but cannot completely eliminate air bubbles from the system or are relatively difficult to integrate into microfluidic systems. Recent advancements in two-photon polymerization (2PP)-based microfabrication method eliminates the restriction in Z-axis control in conventional two-dimensional microfabrication methods, and thus enables complex 3D structures to be fabricated at sub-micrometer resolution. In this work, by utilizing this 2PP technique, we developed a sloped microfluidic structure that is capable of both trapping and real-time removal of air bubbles from the system in a consistent and reliable manner. The novel structures and designs developed in this work present a unique opportunity to overcome many limitations of current methods, bring state-of-the-art solutions in air bubble removal, and enable a multifunctional microfluidic device to operate seamlessly free from air bubble disruption. The microfabricated system was tested in both droplet microfluidics and continuous-flow microfluidics applications, and demonstrated to be effective in preventing air bubble aggregation over time. This simple sloped microstructure can be easily integrated into broad ranges of microfluidic devices to minimize bubble introduction, which will contribute to creating a stable and bubble-free microfluidic platform amenable for long-term operation.

Entities:  

Keywords:  Air removal; Bubble trap; Microfluidics; Sloped microstructure; Two-photon polymerization microfabrication

Year:  2020        PMID: 33090275     DOI: 10.1007/s10544-020-00529-w

Source DB:  PubMed          Journal:  Biomed Microdevices        ISSN: 1387-2176            Impact factor:   2.838


  6 in total

Review 1.  Emergence of debubblers in microfluidics: A critical review.

Authors:  Mingpeng Yang; Nan Sun; Yong Luo; Xiaochen Lai; Peiru Li; Zhenyu Zhang
Journal:  Biomicrofluidics       Date:  2022-06-21       Impact factor: 3.258

2.  Air bubble removal: Wettability contrast enabled microfluidic interconnects.

Authors:  Xiaoxiao Zhao; Chenbo Ma; Daniel S Park; Steven A Soper; Michael C Murphy
Journal:  Sens Actuators B Chem       Date:  2022-03-12       Impact factor: 9.221

Review 3.  Pancreatic islet organoids-on-a-chip: how far have we gone?

Authors:  Jiaxiang Yin; Hao Meng; Jingfang Lin; Wei Ji; Tao Xu; Huisheng Liu
Journal:  J Nanobiotechnology       Date:  2022-06-28       Impact factor: 9.429

4.  A Microphysiological Cell-Culturing System for Pharmacokinetic Drug Exposure and High-Resolution Imaging of Arrays of 3D Microtissues.

Authors:  Christian Lohasz; Jacqueline Loretan; Dario Sterker; Ekkehard Görlach; Kasper Renggli; Paul Argast; Olivier Frey; Marion Wiesmann; Markus Wartmann; Martin Rausch; Andreas Hierlemann
Journal:  Front Pharmacol       Date:  2021-12-21       Impact factor: 5.810

5.  FIDELITY: A quality control system for droplet microfluidics.

Authors:  Han Zhang; Can Huang; Yuwen Li; Rohit Gupte; Ryan Samuel; Jing Dai; Adrian Guzman; Rushant Sabnis; Paul de Figueiredo; Arum Han
Journal:  Sci Adv       Date:  2022-07-08       Impact factor: 14.957

6.  How to Perform a Microfluidic Cultivation Experiment-A Guideline to Success.

Authors:  Sarah Täuber; Julian Schmitz; Luisa Blöbaum; Niklas Fante; Heiko Steinhoff; Alexander Grünberger
Journal:  Biosensors (Basel)       Date:  2021-11-29
  6 in total

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