Applied Physics Letters · 2018 · 18 citations · 15 references
EngineeringBiomimetic MaterialsBiofabricationSurface NanotechnologyBiomedical EngineeringMicro-optical ComponentNanoengineeringMaterials FabricationBiomedical DevicesMicroscale SystemMicrofluidicsHybrid MaterialsNanolithography MethodMaterials ScienceSingle-step FabricationNanomanufacturingPdms FilmCell-adhesive MicrowellMicro TechnologySurface NanoengineeringPdms SurfaceMicrofabricationBiomedical DiagnosticsLab-on-a-chipNanofabricationPolydimethylsiloxane Microwell
We propose a single-step fabrication method for polydimethylsiloxane (PDMS) cell-adhesive microwell arrays with long-lasting (>10 months in aqueous medium) hydrophilic inner surfaces without the need for any chemical treatment such as development. Irradiation of a PDMS film with a low-energy electron beam (55 kV) in air generated a ∼40-μm-thick hydrophilic silica-like layer on the PDMS surface, which was the key to the prolonged hydrophilicity. Moreover, the concomitant compaction of the irradiated area produced dozens-of-micrometers-deep concave wells. The hydrophilic microwells generated on the hydrophobic non-irradiated PDMS surface easily trapped nano-/picoliter droplets and cells/single-cells. In addition, the surfaces of the microwells offered stable and favorable cell-adherent environments. The method presented here can realize stable and reliable lab-on-chips and cater to the expanding demand in biological and medical applications.
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The autofluorescence of plastic materials and chips measured under laser irradiation
Aigars Piruska, Irena Nikčević, Se Hwan Lee et al. · Lab on a Chip · 2005 · 418 citations