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channel made from polydimethylsiloxane pdms sylgard 184 elastomer kit  (Dow Corning)

 
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    Structured Review

    Dow Corning channel made from polydimethylsiloxane pdms sylgard 184 elastomer kit
    Channel Made From Polydimethylsiloxane Pdms Sylgard 184 Elastomer Kit, supplied by Dow Corning, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/polydimethylsiloxane+pdms+channel/pdms+sylgard+184/pm40319024-270-12-18
    Average 90 stars, based on 1 article reviews
    channel made from polydimethylsiloxane pdms sylgard 184 elastomer kit - by Bioz Stars, 2026-09
    90/100 stars

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    Image Search Results


    Flow alters the area of SLBs. Lipid bilayer patches were deposited on the glass coverslip base of a rectangular PDMS channel ( A and B ). Membrane patches composed of 99.2 mol % DiphyPC and labeled with 0.8 mol % Texas red DPPE initially form with smooth edges ( C and D , left columns). Upon exposure to low ( C ) or high ( D ) shear stress, lipid patches expand ( C and D , right columns). In all images, the flow direction was from right to left. To see this figure in color, go online.

    Journal: Biophysical Journal

    Article Title: Passive and reversible area regulation of supported lipid bilayers in response to fluid flow

    doi: 10.1016/j.bpj.2023.01.012

    Figure Lengend Snippet: Flow alters the area of SLBs. Lipid bilayer patches were deposited on the glass coverslip base of a rectangular PDMS channel ( A and B ). Membrane patches composed of 99.2 mol % DiphyPC and labeled with 0.8 mol % Texas red DPPE initially form with smooth edges ( C and D , left columns). Upon exposure to low ( C ) or high ( D ) shear stress, lipid patches expand ( C and D , right columns). In all images, the flow direction was from right to left. To see this figure in color, go online.

    Article Snippet: Rectangular polydimethylsiloxane (PDMS) microfluidic channels of dimensions 300 μ m wide and 100 μ m tall were made using a 10:1 mixture of Sylgard 184 to curing agent (Dow Corning, Midland, MI) and cured overnight at 65°C.

    Techniques: Membrane, Labeling, Shear

    ( A ) COMSOL simulation of shear stress at the lower surface of a rectangular microfluidic channel. ( B ) Values of shear stress at the coverslip surface for a range of different flow rates. Values were measured across the dotted white line in ( A ). ( C ) COMSOL simulation of shear stress at the lower surface of the neutron flow gasket. The dotted region shows the sample area where shear stress is approximately uniform, which was used to define the footprint of the neutron beam. To see this figure in color, go online.

    Journal: Biophysical Journal

    Article Title: Passive and reversible area regulation of supported lipid bilayers in response to fluid flow

    doi: 10.1016/j.bpj.2023.01.012

    Figure Lengend Snippet: ( A ) COMSOL simulation of shear stress at the lower surface of a rectangular microfluidic channel. ( B ) Values of shear stress at the coverslip surface for a range of different flow rates. Values were measured across the dotted white line in ( A ). ( C ) COMSOL simulation of shear stress at the lower surface of the neutron flow gasket. The dotted region shows the sample area where shear stress is approximately uniform, which was used to define the footprint of the neutron beam. To see this figure in color, go online.

    Article Snippet: Rectangular polydimethylsiloxane (PDMS) microfluidic channels of dimensions 300 μ m wide and 100 μ m tall were made using a 10:1 mixture of Sylgard 184 to curing agent (Dow Corning, Midland, MI) and cured overnight at 65°C.

    Techniques: Shear

    DiphyPC patches on an oxidized PDMS substrate exhibit a distinct flow response depending on substrate surface roughness, as determined by AFM. Glass roughness ( A ) was small (RMS roughness = 0.2 nm), consistent with previous measurements of glass prepared by this method ( 29 ). The PDMS surface undulations ( B ) have larger wavelength and amplitude. Average surface roughness ( C ) of glass and PDMS substrate measured with AFM; error bars denote standard deviation. ( D ) After a small expansion, bright puncta appear on the membrane surface and grow in intensity over time, suggesting that membrane tubules or protrusions extend out of the supported bilayer. ( E ) Apparent membrane area compared for membrane patches on PDMS and glass over the course of two flow and rest cycles, with blue shading indicating time points when flow is turned on. Plots represent the mean response from 16 different patches for the PDMS and 13 patches on the treated glass, with shading representing the standard deviation. To see this figure in color, go online.

    Journal: Biophysical Journal

    Article Title: Passive and reversible area regulation of supported lipid bilayers in response to fluid flow

    doi: 10.1016/j.bpj.2023.01.012

    Figure Lengend Snippet: DiphyPC patches on an oxidized PDMS substrate exhibit a distinct flow response depending on substrate surface roughness, as determined by AFM. Glass roughness ( A ) was small (RMS roughness = 0.2 nm), consistent with previous measurements of glass prepared by this method ( 29 ). The PDMS surface undulations ( B ) have larger wavelength and amplitude. Average surface roughness ( C ) of glass and PDMS substrate measured with AFM; error bars denote standard deviation. ( D ) After a small expansion, bright puncta appear on the membrane surface and grow in intensity over time, suggesting that membrane tubules or protrusions extend out of the supported bilayer. ( E ) Apparent membrane area compared for membrane patches on PDMS and glass over the course of two flow and rest cycles, with blue shading indicating time points when flow is turned on. Plots represent the mean response from 16 different patches for the PDMS and 13 patches on the treated glass, with shading representing the standard deviation. To see this figure in color, go online.

    Article Snippet: Rectangular polydimethylsiloxane (PDMS) microfluidic channels of dimensions 300 μ m wide and 100 μ m tall were made using a 10:1 mixture of Sylgard 184 to curing agent (Dow Corning, Midland, MI) and cured overnight at 65°C.

    Techniques: Standard Deviation, Membrane