Abstract We demonstrate and explain a simple and efficient way to remove gas bubbles from liquid-filled microchannels, by integrating a hydrophobic porous membrane on top of the microchannel. A prototype chip is manufactured in hard, transparent polymer with the ability to completely filter gas plugs out of a segmented flow at rates up to 7.4 ll/s/mm2 of membrane area. The device involves a bubble generation section and a gas removal section. In the bubble generation section, a T-junction is used to generate a train of gas plugs into a water stream. These gas plugs are then transported toward the gas removal section, where they slide along a hydrophobic membrane until complete removal. The system has been successfully modeled, and four nece...
This research presents an approach for applying microgrooved membranes for improved gas–liquid conta...
AbstractA micro-porous hollow fibre membrane contactor (HFMC) operated in sweep-gas mode has been st...
In this article we present a new versatile replication method to produce thin polymeric microfluidic...
Unintendedly introduced gas bubbles in channels can significantly interfere with performance and beh...
This paper presents a simple and efficient method for removing gas bubbles from a microfluidic syste...
We introduce a new mechanism to pump liquid in microchannels based on the directional growth and dis...
Unwanted gas bubbles are a challenge for microfluidic-based systems, as adherence to channel network...
We report an analysis of pressure-driven bubble elimination for a gas-permeable microfluidic device....
This paper introduces a breather for micro direct methanol fuel cell (µDMFC) that removes the gas by...
Transport phenomena induced by micrometer size drops and bubbles are aesthetic, scientifically chall...
As a byproduct, CO2 gas is constantly generated from the electrochemical reactions of direct methano...
Gas-liquid phase separation under microgravity conditions or in small-scale fluidic systems represen...
This paper reports a new micropumping mechanism that combines directional bubble growth and symmetri...
Two polydimethylsiloxane (PDMS) gas purge valves for excessive gas removal in general lab-on-a-chip ...
This work proposes a gas-liquid contactor study in microfluidics field, using dense membrane working...
This research presents an approach for applying microgrooved membranes for improved gas–liquid conta...
AbstractA micro-porous hollow fibre membrane contactor (HFMC) operated in sweep-gas mode has been st...
In this article we present a new versatile replication method to produce thin polymeric microfluidic...
Unintendedly introduced gas bubbles in channels can significantly interfere with performance and beh...
This paper presents a simple and efficient method for removing gas bubbles from a microfluidic syste...
We introduce a new mechanism to pump liquid in microchannels based on the directional growth and dis...
Unwanted gas bubbles are a challenge for microfluidic-based systems, as adherence to channel network...
We report an analysis of pressure-driven bubble elimination for a gas-permeable microfluidic device....
This paper introduces a breather for micro direct methanol fuel cell (µDMFC) that removes the gas by...
Transport phenomena induced by micrometer size drops and bubbles are aesthetic, scientifically chall...
As a byproduct, CO2 gas is constantly generated from the electrochemical reactions of direct methano...
Gas-liquid phase separation under microgravity conditions or in small-scale fluidic systems represen...
This paper reports a new micropumping mechanism that combines directional bubble growth and symmetri...
Two polydimethylsiloxane (PDMS) gas purge valves for excessive gas removal in general lab-on-a-chip ...
This work proposes a gas-liquid contactor study in microfluidics field, using dense membrane working...
This research presents an approach for applying microgrooved membranes for improved gas–liquid conta...
AbstractA micro-porous hollow fibre membrane contactor (HFMC) operated in sweep-gas mode has been st...
In this article we present a new versatile replication method to produce thin polymeric microfluidic...