SynVivo
Chip Bifurcating Channels - PDMS (pack of 3)Delivery and duties paid, now live for the UK — local shopping experience, no surprise fees!
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Support by a team of engineers & PhDs
Support by a team of engineers & PhDs
Support by a team of engineers & PhDs
Whereas standard ChipShop connectors only accept soft-walled tubing, this set of connectors allows connecting any 1/16" OD rigid tubing to a ChipShop chip.
Suitable for rigid tubing (PTFE, PEEK, etc.) with an OD of 1/16" (1.6 mm). Manufactured in blue TPE, max. pressure of 3.2 bar with a 1/16" OD PEEK tubing.
Plugs to block unused ports are also available in our shop.
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This PDMS chip with a 3-channel simplified design of different widths allows you to study shear effects according to channel size and flow rates. Assess biological processes such as cell/particle adhesion and cell/cell or cell/particle interactions at the micro-circulation scale in a very simple way.
4 variations of the width of the channels are available:
Depth of 100 µm, punched holes for 1/16" (1.6 mm) OD tubing. Standard microscope slide (75 x 25 mm).
The simplicity of the design will allow you to save up to 90% in consumables compared to conventional flow chambers.
3x PDMS chip with linear channels
| Chip material | PDMS |
| Glass slide dimensions | 75 mm x 25 mm |
| Channels width |
100 / 100 / 100 µm 250 / 250 / 250 µm 500 / 500 / 500 µm 100 / 250 / 500 µm |
| Channel height | 100 µm |
| Inlet/outlet size | For 1.6 mm (1/16") OD tubing |
Yoshida, S., & Itakura, K. (2020). Compressed holographic particle tracking velocimetry for microflow measurements. Optical Review, 27(5), 441-446. https://doi.org/10.1007/s10043-020-00616-6
Jarvis, M., Arnold, M., Ott, J., Krishnan, V., Pant, K., Prabhakarpandian, B., & Mitragotri, S. (2018). Detachment of ligands from nanoparticle surface under flow and endothelial cell contact: Assessment using microfluidic devices. Bioengineering & translational medicine, 3(2), 148-155. https://doi.org/10.1002/btm2.10089
Nowak, M., Brown, T. D., Graham, A., Helgeson, M. E., & Mitragotri, S. (2020). Size, shape, and flexibility influence nanoparticle transport across brain endothelium under flow. Bioengineering & translational medicine, 5(2), e10153. https://doi.org/10.1002/btm2.10153
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