Porous Pdms Beads

Porous PDMS beads are spherical particles made from polydimethylsiloxane, a chemically stable silicone polymer, with internal voids that increase accessible surface area and enable fluid transport. Their performance depends on pore size, connectivity, and surface chemistry: liquids or dissolved molecules diffuse through the network, where hydrophobic PDMS can promote partitioning and adsorption of compatible compounds. In chemistry, these beads provide tunable supports for sample preparation, sorption-based separations, immobilized reagents, and microreactor designs, while their low density and elastic structure aid handling and mass transfer. Controlling porosity therefore links bead architecture to selectivity, capacity, and reaction efficiency.

Porous Pdms Beads - Related Videos

Research

JoVE Journal - Chemistry

Microbubble Fabrication of Concave-porosity PDMS Beads

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Cited by 2 •

2015

Procedures used to generate microstructured concave-porosity polydimethylsiloxane beads are presented. Effects of electrolyte concentration and identity within the aqueous phase are particularly emphasized.

Stretching Micropatterned Cells on a PDMS Membrane

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Cited by 6 •

2014

This manuscript presents a technique to apply or release forces on adherent cells or tissues using unidirectional stretching.

Window on a Microworld: Simple Microfluidic Systems for Studying Microbial Transport in Porous Media

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Cited by 13 •

2010

Microfluidic devices can be used to visualize complex natural processes in real time and at the appropriate physical scales. We have developed a simple microfluidic device that mimics key features of natural porous media for studying growth and transport of bacteria in the subsurface.

Creating Sub-50 Nm Nanofluidic Junctions in PDMS Microfluidic Chip via Self-Assembly Process of Colloidal Particles

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Cited by 1 •

2016

We propose a simple self-assembly technique of silica colloidal nanoparticles to create a nanofluidic junction between two microchannels in polydimethylsiloxane (PDMS). Using this technique, a nanoporous bead membrane with a pore size down to ~45 nm was built inside a microchannel and applied to electrokinetic preconcentration of DNA samples.

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