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    <id>32826</id>
    <completedYear/>
    <publishedYear>2024</publishedYear>
    <thesisYearAccepted/>
    <language>eng</language>
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    <pageLast/>
    <pageNumber/>
    <edition/>
    <issue>2</issue>
    <volume>14</volume>
    <type>articler</type>
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    <completedDate>2024-02-09</completedDate>
    <publishedDate>--</publishedDate>
    <thesisDateAccepted>--</thesisDateAccepted>
    <title language="eng">Deposition of Polymers on Titanium Nitride Electrodes</title>
    <abstract language="eng">The application of titanium nitride (TiN) as an electrode for electrochemical deposition or characterization requires the removal of an insulating layer from its surface. This process was studied and optimized, and the conditions for the complete removal of this layer through treatment with oxalic acid were formulated. The obtained TiN surfaces were used for the deposition of various conducting and non-conducting polymers. Two different approaches were applied: (i) in situ electrochemical synthesis of the main classes of conducting polymers, including polyaniline, polypyrrole, polythiophene, and selected derivatives thereof, and (ii) electrostatically driven layer-by-layer (LbL) deposition of multilayers of oppositely charged polyelectrolytes. The deposited polymers were characterized by electrochemical methods. The electrochemical properties of the deposited conducting polymers and their deposition on the TiN surface were comparable to those of the metallic electrodes. The films produced via LbL deposition exhibited a pronounced influence of the charge of the last deposited polymer on the redox reaction of ferri/ferrocyanide, validating the charge alteration with each successive polymer layer deposition. The studied deposition technologies can be used for the modification of TiN surfaces required in applications of this material in chemical sensors and other devices.</abstract>
    <parentTitle language="eng">Coatings</parentTitle>
    <identifier type="doi">10.3390/coatings14020215</identifier>
    <identifier type="issn">2079-6412</identifier>
    <enrichment key="BTU">an der BTU erstellt / created at BTU</enrichment>
    <enrichment key="opus.source">publish</enrichment>
    <enrichment key="Artikelnummer">215</enrichment>
    <enrichment key="Publikationsweg">Open Access</enrichment>
    <enrichment key="Fprofil">2 Gesundheit und Lifes Sciences / Health and Life Sciences</enrichment>
    <enrichment key="Fprofil">4 Künstliche Intelligenz und Sensorik / Artificial Intelligence and Sensor Technology</enrichment>
    <author>
      <firstName>Yulia</firstName>
      <lastName>Efremenko</lastName>
    </author>
    <submitter>
      <firstName>Marion</firstName>
      <lastName>Tülling</lastName>
    </submitter>
    <author>
      <firstName>Arwa</firstName>
      <lastName>Laroussi</lastName>
    </author>
    <author>
      <firstName>Akant</firstName>
      <lastName>Sengül</lastName>
    </author>
    <author>
      <firstName>Agnieszka Anna</firstName>
      <lastName>Corley-Wiciak</lastName>
    </author>
    <author>
      <firstName>Inga Anita</firstName>
      <lastName>Fischer</lastName>
    </author>
    <author>
      <firstName>Vladimir M.</firstName>
      <lastName>Mirsky</lastName>
    </author>
    <collection role="institutes" number="1504">FG Experimentalphysik und funktionale Materialien</collection>
    <collection role="institutes" number="2108">FG Nanobiotechnologie</collection>
  </doc>
  <doc>
    <id>34252</id>
    <completedYear/>
    <publishedYear>2024</publishedYear>
    <thesisYearAccepted/>
    <language>eng</language>
    <pageFirst/>
    <pageLast/>
    <pageNumber>3</pageNumber>
    <edition/>
    <issue/>
    <volume>807</volume>
    <type>articler</type>
    <publisherName/>
    <publisherPlace/>
    <creatingCorporation/>
    <contributingCorporation/>
    <belongsToBibliography>0</belongsToBibliography>
    <completedDate>2024-10-21</completedDate>
    <publishedDate>--</publishedDate>
    <thesisDateAccepted>--</thesisDateAccepted>
    <title language="eng">Structural and morphological properties of CeO2 films deposited by radio frequency magnetron sputtering for back-end-of-line integration</title>
    <parentTitle language="eng">Thin Solid Films</parentTitle>
    <identifier type="doi">10.1016/j.tsf.2024.140547</identifier>
    <identifier type="issn">0040-6090</identifier>
    <enrichment key="BTU">an der BTU erstellt / created at BTU</enrichment>
    <enrichment key="opus.source">publish</enrichment>
    <enrichment key="Publikationsweg">Open Access</enrichment>
    <enrichment key="opus.doi.autoCreate">false</enrichment>
    <enrichment key="opus.urn.autoCreate">false</enrichment>
    <enrichment key="Fprofil">4 Künstliche Intelligenz und Sensorik / Artificial Intelligence and Sensor Technology</enrichment>
    <author>
      <firstName>Ahsan</firstName>
      <lastName>Hayat</lastName>
    </author>
    <submitter>
      <firstName>Marion</firstName>
      <lastName>Tülling</lastName>
    </submitter>
    <author>
      <firstName>Markus</firstName>
      <lastName>Ratzke</lastName>
    </author>
    <author>
      <firstName>Carlos</firstName>
      <lastName>Alvarado Chavarin</lastName>
    </author>
    <author>
      <firstName>Marvin Hartwig</firstName>
      <lastName>Zöllner</lastName>
    </author>
    <author>
      <firstName>Agnieszka Anna</firstName>
      <lastName>Corley-Wiciak</lastName>
    </author>
    <author>
      <firstName>Markus Andreas</firstName>
      <lastName>Schubert</lastName>
    </author>
    <author>
      <firstName>Christian</firstName>
      <lastName>Wenger</lastName>
    </author>
    <author>
      <firstName>Inga Anita</firstName>
      <lastName>Fischer</lastName>
    </author>
    <collection role="institutes" number="1504">FG Experimentalphysik und funktionale Materialien</collection>
  </doc>
  <doc>
    <id>31150</id>
    <completedYear/>
    <publishedYear>2023</publishedYear>
    <thesisYearAccepted/>
    <language>eng</language>
    <pageFirst/>
    <pageLast/>
    <pageNumber/>
    <edition/>
    <issue/>
    <volume>165</volume>
    <type>articler</type>
    <publisherName/>
    <publisherPlace/>
    <creatingCorporation/>
    <contributingCorporation/>
    <belongsToBibliography>0</belongsToBibliography>
    <completedDate>2023-07-03</completedDate>
    <publishedDate>--</publishedDate>
    <thesisDateAccepted>--</thesisDateAccepted>
    <title language="eng">MBE-based growth of Sn-rich quantum wells and dots at low Sn deposition rates</title>
    <parentTitle language="eng">Materials Science in Semiconductor Processing</parentTitle>
    <identifier type="doi">10.1016/j.mssp.2023.107693</identifier>
    <identifier type="issn">1873-4081</identifier>
    <enrichment key="BTU">an der BTU erstellt / created at BTU</enrichment>
    <enrichment key="opus.source">publish</enrichment>
    <enrichment key="Artikelnummer">107693</enrichment>
    <enrichment key="opus.doi.autoCreate">false</enrichment>
    <enrichment key="opus.urn.autoCreate">false</enrichment>
    <enrichment key="Fprofil">4 Künstliche Intelligenz und Sensorik / Artificial Intelligence and Sensor Technology</enrichment>
    <author>
      <firstName>Ahsan</firstName>
      <lastName>Hayat</lastName>
    </author>
    <submitter>
      <firstName>Marion</firstName>
      <lastName>Tülling</lastName>
    </submitter>
    <author>
      <firstName>Davide</firstName>
      <lastName>Spirito</lastName>
    </author>
    <author>
      <firstName>Agnieszka Anna</firstName>
      <lastName>Corley-Wiciak</lastName>
    </author>
    <author>
      <firstName>Markus Andreas</firstName>
      <lastName>Schubert</lastName>
    </author>
    <author>
      <firstName>Maria</firstName>
      <lastName>Masood</lastName>
    </author>
    <author>
      <firstName>Felix</firstName>
      <lastName>Reichmann</lastName>
    </author>
    <author>
      <firstName>Markus</firstName>
      <lastName>Ratzke</lastName>
    </author>
    <author>
      <firstName>Giovanni</firstName>
      <lastName>Capellini</lastName>
    </author>
    <author>
      <firstName>Inga Anita</firstName>
      <lastName>Fischer</lastName>
    </author>
    <collection role="institutes" number="1504">FG Experimentalphysik und funktionale Materialien</collection>
  </doc>
  <doc>
    <id>36902</id>
    <completedYear/>
    <publishedYear>2025</publishedYear>
    <thesisYearAccepted/>
    <language>eng</language>
    <pageFirst>8825</pageFirst>
    <pageLast>8834</pageLast>
    <pageNumber>10</pageNumber>
    <edition/>
    <issue/>
    <volume>20</volume>
    <type>articler</type>
    <publisherName>Springer</publisherName>
    <publisherPlace>New York, NY</publisherPlace>
    <creatingCorporation/>
    <contributingCorporation/>
    <belongsToBibliography>0</belongsToBibliography>
    <completedDate>2025-12-02</completedDate>
    <publishedDate>--</publishedDate>
    <thesisDateAccepted>--</thesisDateAccepted>
    <title language="eng">Optical response of titanium nitride plasmonic nanohole arrays : impact of square and hexagonal array geometry, pitch, and nanohole diameter</title>
    <abstract language="eng">Plasmonic nanohole arrays (NHAs) exhibit extraordinary optical transmission (EOT) evoked by resonant excitation of surface plasmons at an excitation wavelength, which is highly sensitive to changes in refractive index in the surrounding dielectric. This can enable the use of plasmonic NHAs in on-chip refractive index sensors. Such sensors can be realized on the cost-effective silicon platform by the integration of a plasmonic NHA and a Ge photodetector, provided that complementary metal–oxide–semiconductor (CMOS)-compatible materials are used for their fabrication. Titanium nitride (TiN) as a biocompatible and CMOS-compatible plasmonic transition metal nitride is well-suited for integration on the silicon platform; however, the comparatively large losses within the material require geometry optimization strategies in order to improve the optical properties of TiN NHAs for sensing. In this work, we investigated different TiN NHA geometries both in experiment and simulation. We extensively characterized square and hexagonal arrays with varying pitches and nanohole diameters and provide a detailed comparison of their optical properties. We also discuss characterization results for surface refractive index changes imposed by depositing a thin Al2O3 layer on top of the NHAs. While we do not observe a clear advantage of hexagonal arrays compared to square arrays for sensing, our results highlight the importance of geometry optimization for TiN NHAs integrated with devices.</abstract>
    <parentTitle language="eng">Plasmonics</parentTitle>
    <identifier type="url">https://link.springer.com/article/10.1007/s11468-025-02934-4</identifier>
    <identifier type="doi">10.1007/s11468-025-02934-4</identifier>
    <enrichment key="Fprofil">4 Künstliche Intelligenz und Sensorik / Artificial Intelligence and Sensor Technology</enrichment>
    <enrichment key="BTU">an der BTU erstellt / created at BTU</enrichment>
    <enrichment key="Publikationsweg">Open Access</enrichment>
    <enrichment key="opus.source">publish</enrichment>
    <licence>Creative Commons - CC BY - Namensnennung 4.0 International</licence>
    <author>
      <firstName>Sebastian</firstName>
      <lastName>Reiter</lastName>
    </author>
    <submitter>
      <firstName>Katrin</firstName>
      <lastName>Willhöft</lastName>
    </submitter>
    <author>
      <firstName>Markus</firstName>
      <lastName>Ratzke</lastName>
    </author>
    <author>
      <firstName>Paul-Gregor</firstName>
      <lastName>Nitsch</lastName>
    </author>
    <author>
      <firstName>Christian</firstName>
      <lastName>Mai</lastName>
    </author>
    <author>
      <firstName>Davide</firstName>
      <lastName>Spirito</lastName>
    </author>
    <author>
      <firstName>Agnieszka Anna</firstName>
      <lastName>Corley-Wiciak</lastName>
    </author>
    <author>
      <firstName>Christian</firstName>
      <lastName>Wenger</lastName>
    </author>
    <author>
      <firstName>Inga A.</firstName>
      <lastName>Fischer</lastName>
    </author>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>Plasmonic nanohole array</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>Titanium nitride</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>Hexagonal array</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>Square array</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>Nanohole diameters</value>
    </subject>
    <collection role="institutes" number="1504">FG Experimentalphysik und funktionale Materialien</collection>
    <collection role="institutes" number="1521">FG Halbleitermaterialien</collection>
  </doc>
  <doc>
    <id>37637</id>
    <completedYear/>
    <publishedYear>2026</publishedYear>
    <thesisYearAccepted/>
    <language>eng</language>
    <pageFirst>184</pageFirst>
    <pageLast>196</pageLast>
    <pageNumber>13</pageNumber>
    <edition/>
    <issue>2</issue>
    <volume>16</volume>
    <type>articler</type>
    <publisherName>Optica Publishing Group</publisherName>
    <publisherPlace>Washington, DC</publisherPlace>
    <creatingCorporation/>
    <contributingCorporation/>
    <belongsToBibliography>0</belongsToBibliography>
    <completedDate>2026-01-28</completedDate>
    <publishedDate>--</publishedDate>
    <thesisDateAccepted>--</thesisDateAccepted>
    <title language="eng">Titanium nitride plasmonic nanohole arrays with polymer coating : optical properties and their humidity-induced modifications</title>
    <abstract language="eng">The use of titanium nitride (TiN) for the fabrication of plasmonic structures such as nanohole arrays (NHAs) can enable their integration into optoelectronic devices on the silicon (Si) platform, for example, for the realization of on-chip chemical sensors and biosensors based on refractometric transduction. With a corresponding functionalization of the TiN nanohole arrays, these ultra-compact devices can be utilized in the development of various affinity sensors and sensor systems, such as cost-effective electronic noses for the early detection of gases in the food industry or agriculture. In this work, we focus on two types of coating for functionalization of TiN nanohole arrays: electrochemically synthesized poly-N-methylaniline and layer-by-layer deposited polyacrylic-acid/poly-allylamine (PAA/PAH). Our investigation comprises the experimental characterization of the optical properties of TiN nanhole arrays coated with polymer layers of different thicknesses as well as a comparison with simulation results. We demonstrate the potential of our setup sensing applications by measuring changes in optical properties of TiN nanohole arrays coated with PAA/PAH upon exposure to air of different humidity.</abstract>
    <parentTitle language="eng">Optical materials express</parentTitle>
    <identifier type="doi">10.1364/ome.578871</identifier>
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