Pdms Filaments

PDMS filaments are continuous strands of polydimethylsiloxane, a flexible, chemically resistant silicone elastomer used to create compliant structures and functional components. They are typically formed by extruding or drawing uncured PDMS through a controlled opening, after which curing crosslinks the polymer and stabilizes the filament’s shape and mechanical properties. Filament diameter, curing conditions, and material formulation influence flexibility, strength, and dimensional accuracy. In engineering, PDMS filaments support soft robotics, microfluidic devices, stretchable interfaces, and rapid fabrication of customized geometries, providing a practical route for integrating elastomeric materials into prototypes and microscale systems.

Pdms Filaments - Related Videos

Research

JoVE Journal - Bioengineering

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.

Education

JoVE Science Education - Environmental Sciences

Filamentous Fungi

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2023

Source: Laboratories of Dr. Ian Pepper and Dr. Charles Gerba - The University of Arizona Demonstrating Author: Bradley Schmitz Fungi are heterotrophic eukaryotic organisms, and with the exception of yeasts, are aerobic. They are abundant in surface soils and are important for their role in nutrient cycling and the decomposition of organic matter and organic contaminants. White rot fungi (phanerochaete chryosporium) for example, (Figure 1) are known to degrade aromatics. Figure 1. White rot on...

Research

JoVE Journal - Biology
Free Sample

Non-plasma Bonding of PDMS for Inexpensive Fabrication of Microfluidic Devices

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Cited by 19 •

2007

In this video we demonstrate how to use the neuron microfluidic device without plasma bonding.

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.

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