Optimizing Pin-Printed and Hydrosilylated Microarray Spot Density on Porous Silicon Platforms.
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Summary
Contact pin-printing is used to decrease contact pin-printed spot diameters on porous silicon (pSi) platforms and active agent viscosity and pin diameter is increased in accordance with molecular kinetic theory and Darcy's law of imbibition.
- Type
- article
- Published
- 2015-10-07
- Cited by
- 13
- References
- 55
- OpenAlex
- https://openalex.org/W2286153870
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:485013
Keywords
Contact angle, X-ray photoelectron spectroscopy, Porosity, Hydrosilylation, Porous silicon
References
- High-Throughput Screening System for Creating and Assessing Surface-Modified Porous Silicon
- An In-Depth Study Linking the Infrared Spectroscopy and Photoluminescence of Porous Silicon during Ambient Hydrogen Peroxide Oxidation
- Printing proteins as microarrays for high-throughput function determination.
- Porous silicon organic vapor sensor
- Spreading Diagrams for the Optimization of Quill Pin Printed Microarray Density
- Gel-pad microarrays templated by patterned porous silicon for dual-mode detection of proteins.
- Correlation between Vickers microhardness, porous layer thickness and porosity in p-type nanostructured silicon
- Biocompatibility of surfaces for antibody microarrays: design of macroporous silicon substrates.
- Rapid, reversible, sensitive porous silicon gas sensor
- Porous silicon optical filters for biosensing applications
- Hydride Abstraction Initiated Hydrosilylation of Terminal Alkenes and Alkynes on Porous Silicon
- The structural and luminescence properties of porous silicon
- Correction for multiple reflections in infrared spectra of amorphous silicon
- A high resolution XPS study of a complex insulator : the case of porous silicon
- Porous silicon with β-cyclodextrin modified surface for photoluminescence sensing of organic molecules in gas and liquid phase
- Influence of pH solution on photoluminescence of porous silicon
- Multianalyte pin-printed biosensor arrays based on protein-doped xerogels.
- A critical comparison of protein microarray fabrication technologies.
- Single beam determination of porosity and etch rate in situ during etching of porous silicon
- Porous silicon biosensor for detection of viruses.
Cited by
- Spatial Characteristics of Contact Pin-Printed Silanes and Bioconjugates on Oxidized Porous Silicon
- Robust pH-responsive group IV metal oxide functionalized porous silicon platforms
- Contact Pin-Printing onto Porous Silicon for Creating Microarrays with High Chemical Diversity
- Ionic Liquids Can Permanently Modify Porous Silicon Surface Chemistry.
- Origin of Analyte-Induced Porous Silicon Photoluminescence Quenching
- Exploiting the 3-Aminopropyltriethoxysilane (APTES) autocatalytic nature to create bioconjugated microarrays on hydrogen-passivated porous silicon.
- Gallium indium eutectic masking prior to porous silicon formation creates unique spatially-dependent chemistries.
- Porous Silicon-Based Photonic Biosensors: Current Status and Emerging Applications.
- Interplay Between Silicon Nanocrystal Size and Local Environment Within Porous Silicon on the Analyte-Dependent Photoluminescence Response
- Chemical sensor based on the colorimetric response of porous silicon photonic crystal
- Hydrosilylation of porous silicon: Unusual possibilities and potential challenges.
- Colorimetric Sensors and Sensor Arrays
- Biomolecule Attachment to Porous Silicon
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