Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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Materials Map under construction

The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (7/7 displayed)

  • 2023Concrete corrosion analysis using optical chemical sensors and imagingcitations
  • 2023Optical sensors for the durability assessment of cement-based infrastructurecitations
  • 2021Continuous optical in-situ pH monitoring during early hydration of cementitious materials27citations
  • 2019High-resolution optical pH imaging of concrete exposed to chemically corrosive environments46citations
  • 2018Wide-range optical pH imaging of cementitious materials exposed to chemically corrosive environments17citations
  • 2018OPTICAL PH IMAGING OF CONCRETE EXPOSED TO CHEMICALLY CORROSIVE ENVIRONMENTScitations
  • 2016Online analysis of oxygen inside silicon-glass microreactors with integrated optical sensors52citations

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Sterz, Karl Leonard
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Galan, Isabel
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Juhart, Joachim
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Sakoparnig, Marlene
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Vallazza-Grengg, Cyrill
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Müller, Bernhard
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Mittermayr, Florian
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Sterz, Karl Leonhard
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Sakopanig, Marlene
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Zögl, Iris
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Dietzel, Martin
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Ungerböck, Birgit
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Staudinger, Christoph
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Krühne, Ulrich
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Burger, Tobias
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Sulzer, Philipp
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Ehgartner, Josef
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Bouwes, Dominique
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Kasjanow, Alice
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Klimant, Ingo
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Co-Authors (by relevance)

  • Sterz, Karl Leonard
  • Galan, Isabel
  • Juhart, Joachim
  • Sakoparnig, Marlene
  • Vallazza-Grengg, Cyrill
  • Müller, Bernhard
  • Mittermayr, Florian
  • Sterz, Karl Leonhard
  • Sakopanig, Marlene
  • Zögl, Iris
  • Briendl, Lukas G.
  • Dietzel, Martin
  • Ungerböck, Birgit
  • Borisov, Sergey
  • Breininger, Johanna
  • Staudinger, Christoph
  • Schallert, Viktor
  • Krühne, Ulrich
  • Burger, Tobias
  • Sulzer, Philipp
  • Ehgartner, Josef
  • Bouwes, Dominique
  • Kasjanow, Alice
  • Klimant, Ingo
OrganizationsLocationPeople

article

Online analysis of oxygen inside silicon-glass microreactors with integrated optical sensors

  • Krühne, Ulrich
  • Burger, Tobias
  • Sulzer, Philipp
  • Ehgartner, Josef
  • Bouwes, Dominique
  • Kasjanow, Alice
  • Klimant, Ingo
  • Mayr, Torsten
Abstract

A powerful online analysis set-up for oxygen measurements within microfluidic devices is presented. It features integration of optical oxygen sensors into microreactors, which enables contactless, accurate and inexpensive readout using commercially available oxygen meters via luminescent lifetime measurements in the frequency domain (phase shifts). The fabrication and patterning of sensor layers down to a size of 100 μm in diameter is performed via automated airbrush spraying and was used for the integration into silicon-glass microreactors. A novel and easily processable sensor material is also presented and consists of a polystyrene- silicone rubber composite matrix with embedded palladium(II) or platinum(II) meso-tetra(4-fluorophenyl) tetrabenzoporphyrin (PdTPTBPF and PtTPTBPF) as oxygen sensitive dye. The resulting sensor layers have several advantages such as being excitable with red light, emitting in the near-infrared spectral region, being photostable and covering a wide oxygen concentration range. The trace oxygen sensor (PdTPTBPF) in particular shows a resolution of 0.06-0.22 hPa at oxygen concentrations lower than 20 hPa (<2% oxygen) and the normal range oxygen sensor (PtTPTBPF) shows a resolution of 0.2-0.6 hPa at low oxygen concentrations (<50 hPa) and 1-2 hPa at ambient air oxygen concentrations. The sensors were integrated into different silicon-glass microreactors which were manufactured using mass production compatible processes. The obtained microreactors were applied for online monitoring of enzyme transformations, including d-alanine or d-phenylalanine oxidation by d-amino acid oxidase, and glucose oxidation by glucose oxidase.

Topics
  • impedance spectroscopy
  • phase
  • Oxygen
  • Platinum
  • glass
  • glass
  • composite
  • Silicon
  • rubber
  • palladium