Literature DB >> 31168556

Nip the bubble in the bud: a guide to avoid gas nucleation in microfluidics.

Iago Pereiro1, Anna Fomitcheva Khartchenko, Lorenzo Petrini, Govind V Kaigala.   

Abstract

Gas bubbles are almost a routine occurrence encountered by researchers working in the field of microfluidics. The spontaneous and unexpected nature of gas bubbles represents a major challenge for experimentalists and a stumbling block for the translation of microfluidic concepts to commercial products. This is a startling example of successful scientific results in the field overshadowing the practical hurdles of day-to-day usage. We however believe such hurdles can be overcome with a sound understanding of the underlying conditions that lead to bubble formation. In this tutorial, we focus on the two main conditions that result in bubble nucleation: surface nuclei and gas supersaturation in liquids. Key theoretical concepts such as Henry's law, Laplace pressure, the role of surface properties, nanobubbles and surfactants are presented along with a view of practical implementations that serve as preventive and curative measures. These considerations include not only microfluidic chip design and bubble traps but also often-overlooked conditions that regulate bubble formation, such as gas saturation under pressure or temperature gradients. Scenarios involving electrolysis, laser and acoustic cavitation or T-junction/co-flow geometries are also explored to provide the reader with a broader understanding on the topic. Interestingly, despite their often-disruptive nature, gas bubbles have also been cleverly utilized for certain practical applications, which we briefly review. We hope this tutorial will provide a reference guide in helping to deal with a familiar foe, the "bubble".

Year:  2019        PMID: 31168556     DOI: 10.1039/c9lc00211a

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  12 in total

1.  Micro-scale technologies propel biology and medicine.

Authors:  Iago Pereiro; Julien Aubert; Govind V Kaigala
Journal:  Biomicrofluidics       Date:  2021-04-27       Impact factor: 2.800

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

3.  CFD Analysis and Life Cycle Assessment of Continuous Synthesis of Magnetite Nanoparticles Using 2D and 3D Micromixers.

Authors:  Sergio Leonardo Florez; Ana Lucia Campaña; M Juliana Noguera; Valentina Quezada; Olga P Fuentes; Juan C Cruz; Johann F Osma
Journal:  Micromachines (Basel)       Date:  2022-06-19       Impact factor: 3.523

4.  Towards spatially-organized organs-on-chip: Photopatterning cell-laden thiol-ene and methacryloyl hydrogels in a microfluidic device.

Authors:  Jennifer E Ortiz-Cárdenas; Jonathan M Zatorski; Abhinav Arneja; Alyssa N Montalbine; Jennifer M Munson; Chance John Luckey; Rebecca R Pompano
Journal:  Organs Chip       Date:  2022-01-26

5.  Lateral Degassing Method for Disposable Film-Chip Microfluidic Devices.

Authors:  Suhee Park; Hyungseok Cho; Junhyeong Kim; Ki-Ho Han
Journal:  Membranes (Basel)       Date:  2021-04-26

Review 6.  Translational Roadmap for the Organs-on-a-Chip Industry toward Broad Adoption.

Authors:  Vanessa Allwardt; Alexander J Ainscough; Priyalakshmi Viswanathan; Stacy D Sherrod; John A McLean; Malcolm Haddrick; Virginia Pensabene
Journal:  Bioengineering (Basel)       Date:  2020-09-16

7.  A Fast Alternative to Soft Lithography for the Fabrication of Organ-on-a-Chip Elastomeric-Based Devices and Microactuators.

Authors:  Daniel A Ferreira; Mario Rothbauer; João P Conde; Peter Ertl; Carla Oliveira; Pedro L Granja
Journal:  Adv Sci (Weinh)       Date:  2021-02-08       Impact factor: 16.806

8.  Air-encapsulating elastic mechanism of submerged Taraxacum blowballs.

Authors:  M C Pugno; D Misseroni; N M Pugno
Journal:  Mater Today Bio       Date:  2021-01-28

9.  Microfluidic flow-cell with passive flow control for microscopy applications.

Authors:  Nicholas A W Bell; Justin E Molloy
Journal:  PLoS One       Date:  2020-12-15       Impact factor: 3.240

10.  Development of a Heavy Metal Sensing Boat for Automatic Analysis in Natural Waters Utilizing Anodic Stripping Voltammetry.

Authors:  Qiuyue Yang; Bhawna Nagar; Ruslán Alvarez-Diduk; Marc Balsells; Alessandro Farinelli; Domenico Bloisi; Lorenzo Proia; Carmen Espinosa; Marc Ordeix; Thorsten Knutz; Elisabetta De Vito-Francesco; Roza Allabashi; Arben Merkoçi
Journal:  ACS ES T Water       Date:  2021-10-20
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