Microplasma Array Patterning of Reactive Oxygen and Nitrogen Species onto Polystyrene
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Authors
Szili, Endre
Dedrick, James
Oh, Jun-Seok
Bradley, James
Boswell, Roderick
Charles, Christine
Short, Robert
Al-Bataineh, Sameer A.
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American Institute of Physics (AIP)
Abstract
We investigate an approach for the patterning of reactive oxygen and nitrogen species
(RONS) onto polystyrene using atmospheric-pressure microplasma arrays. The spectrally
integrated and time-resolved optical emission from the array is characterized with respect
to the applied voltage, applied-voltage frequency and pressure; and the array is used to
achieve spatially resolved modification of polystyrene at three pressures: 500, 760, and
1000 Torr. As determined by time-of-flight secondary ion mass spectrometry (ToF-SIMS),
regions over which surface modification occurs are clearly restricted to areas that are
exposed to individual microplasma cavities. Analysis of the negative-ion ToF-SIMS mass
spectra from the center of the modified microspots shows that the level of oxidation is
dependent on the operating pressure, and closely correlated with the spatial distribution
of the optical emission. The functional groups that are generated by the microplasma
array on the polystyrene surface are shown to readily participate in an oxidative reaction in
phosphate buffered saline solution (pH 7.4). Patterns of oxidized and chemically reactive
functionalities could potentially be applied to the future development of biomaterial
surfaces, where spatial control over biomolecule or cell function is needed.
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Physics of Plasmas