<?xml version="1.0" encoding="UTF-8" ?><OAI-PMH xmlns="http://www.openarchives.org/OAI/2.0/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/ http://www.openarchives.org/OAI/2.0/OAI-PMH.xsd"><responseDate>2026-08-08T21:49:27Z</responseDate><request identifier="10.35097/1356" metadataPrefix="datacite" verb="GetRecord">https://www.radar-service.eu/oai/OAIHandler</request><GetRecord><record><header><identifier>10.35097/1356</identifier><datestamp>2023-11-15T14:45:52Z</datestamp><setSpec>radar4kit</setSpec></header><metadata><resource xmlns="http://datacite.org/schema/kernel-4"
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   <identifier identifierType="DOI">10.35097/1356</identifier>
   <creators>
      <creator>
         <creatorName>Sapotta, Benedikt</creatorName>
         <givenName>Benedikt</givenName>
         <familyName>Sapotta</familyName>
         <affiliation>Institut für Funktionelle Grenzflächen</affiliation>
      </creator>
   </creators>
   <titles>
      <title>Supplementary research data for the thesis "Comprehensive insights into the impedimetric characterization of dielectric thin films"</title>
   </titles>
   <publisher>Karlsruhe Institute of Technology</publisher>
   <dates>
      <date dateType="Created">2022</date>
   </dates>
   <publicationYear>2023</publicationYear>
   <subjects>
      <subject>Biology</subject>
      <subject>impedance spectroscopy</subject>
      <subject>dielectric spectroscopy</subject>
      <subject>interdigitated electrode</subject>
   </subjects>
   <resourceType resourceTypeGeneral="Dataset"/>
   <rightsList>
      <rights rightsURI="info:eu-repo/semantics/openAccess">Open Access</rights>
      <rights schemeURI="https://spdx.org/licenses/"
              rightsIdentifierScheme="SPDX"
              rightsIdentifier="CC-BY-4.0"
              rightsURI="https://creativecommons.org/licenses/by/4.0/legalcode">Creative Commons Attribution 4.0 International</rights>
   </rightsList>
   <contributors>
      <contributor contributorType="RightsHolder">
         <contributorName>Sapotta, Benedikt</contributorName>
      </contributor>
      <contributor contributorType="Supervisor">
         <contributorName>Franzreb, Matthias</contributorName>
         <nameIdentifier nameIdentifierScheme="ORCID" schemeURI="http://orcid.org/">0000-0003-3586-4215</nameIdentifier>
         <affiliation>Institut für Funktionelle Grenzflächen</affiliation>
      </contributor>
   </contributors>
   <descriptions>
      <description descriptionType="TechnicalInfo">### Supplementary Research Data for the dissertation&#xD;
### "Comprehensive insights into the impedimetric characterization of dielectric thin films"&#xD;
### by Benedikt Sapotta&#xD;
&#xD;
Important: The impedance spectra are disclosed as .DTA files which can be accessed with e.g. the text editor&#xD;
&#xD;
&#xD;
### Content&#xD;
&#xD;
&#xD;
#### 1 Estimation of IDE cell constant&#xD;
&#xD;
- python script to calculate an IDE cell constant based on https://doi.org/10.1016/0925-4005(95)85053-8&#xD;
&#xD;
&#xD;
#### 2 Estimation of effective permittivity of coated IDE&#xD;
&#xD;
- python script to calculate the effective permittivity of a coated IDE structure base on https://doi.org/10.1016/j.sna.2011.09.033 and https://doi.org/10.1016/j.sna.2004.01.040&#xD;
- functionality of the python script is demonstrated by reproducing figure 7 and 8 from https://doi.org/10.1016/j.sna.2011.09.033&#xD;
&#xD;
&#xD;
#### 3 Uncoated IDE data&#xD;
&#xD;
- light and scanning electron micrographs of the uncoated IDE structures&#xD;
&#xD;
- impedance spectra discussed in chapter 5.2 together with the data fit results using ECM 1&#xD;
&#xD;
- impedance spectra and evaluation procedure discussed in chapter 5.3&#xD;
 - python scripts to compute the reference conductivities "Expected Conductivities.py" and reference permittivities "Expected Permittivities.py"&#xD;
 - data fit results to the aqueous KCl solutions copied into an excel file&#xD;
 - python script to compute the capacitance C\_Par+C\_Geo from the DRM impedance spectra "Capacitance\_Calculator.py"&#xD;
 - python script to compute the relative permittivities of the DRMs from C\_Par+C\_Geo "Permittivity\_Calculator.py"&#xD;
 - python script to compute the electrolytic condudctivity of the CRMs from the R\_E best fit estimates "Conductivity\_Calculator.py"&#xD;
&#xD;
&#xD;
#### 4 HKUST\-1 coated IDE data&#xD;
&#xD;
- data and evaluation procedures for the coated 5 µm electrode chip discussed in chapter 6.1 &#xD;
 - impedance spectra collected with the&#xD;
  - DRMs: 1-butanol, ethanol and air to obtain C\_Par and K\_Cell of the electrode chip&#xD;
  - linker precursor solution as a function of the growth cycles (1-205)&#xD;
  - metal precursor solution as a function of the growth cycles (1-205)&#xD;
 - ECM 2 fit results to the metal and linker data copied into the excel file "ECM\_2\_BatchFit\_Results.xlsx"&#xD;
 - an animated bode plot of the linker and metal impedance spectra&#xD;
&#xD;
 - python script for the monte carlo modelling to obtain the coating permittivities and thickness based on the impedance data "MC\_modelling\_growth\_data.py"&#xD;
 - a simplified data flow chart as .png to facilitate the understanding of "MC\_modelling\_growth\_data.py"&#xD;
&#xD;
 - an assortment of scanning electron micrographs depicting the coated IDE structures &#xD;
 &#xD;
- data and evaluation procedures for the coated 10 µm electrode chip discussed in chapter 6.2 &#xD;
 - python script which was used for the automated uptake of impedance spectra during the HKUST-1 coating process "SURSENSOR.py"&#xD;
 - impedance data (FS= full impedance spectrum, SF= single frequency impedance data) collected with the &#xD;
  - DRMs: 1-butanol, ethanl and air to obtain C\_Par and K\_Cell&#xD;
  - linker precursor solution as a function of the growth cycle (1-200)&#xD;
   - spectra were recorded after the 300, 600 and 900 seconds after the initial exposure to the linker solution, only the 900 s data was evaluated&#xD;
   - single frequency impedance data was recorded during the initial 300 seconds of the linker solution exposure step at 100 kHz&#xD;
  - metal precursor solution as a function of the growth cycle (1-200)&#xD;
   - spectra were recorded after 200, 400 and 600 seconds after initial exposure to the metal solution, only the 600 s data was evaluated&#xD;
   - single frequency impedance data was recorded during the initial 200 seconds of the metal solution exposure step at 100 kHz&#xD;
  - testing solutions as a function of the growth cycle&#xD;
   - spectra were recorded after 180, 240 and 300 seconds after initial exposure to the respective testing solution, only the 300 s data was evaluated&#xD;
   - single frequency impedance data was recorded during the initial 180 seconds of each testing solution exposure step at 1 MHz&#xD;
 - ECM 2 fit results to the metal and linker data copied into the excel file "Growth\_Data\_BatchFit\_Results.xlsx"&#xD;
 - ECM 1 fit results to the testing solution spectra recorded before the HKUST-1 coating process copied into the excel file "Cycle\_0\_DataFits.xlsx"&#xD;
 - ECM 2 fit results to the testing solution spectra recorded with the HKUST-1 coated electrode structure copied into the excel files "Cycle\_50DataFits.xlsx",  "Cycle\_100\_Data\_Fits.xlsx", "Cycle 150 Data Fits.xlsx" and "Cycle\_200DataFits.xlsx",&#xD;
&#xD;
 - python script for the monte carlo modelling to obtain the coating permittivities and conductivities during the exposure with the testing solutions "MC\_modelling\_testing\_data.py" which is an extension of "MC\_modelling\_growth\_data.py"&#xD;
 - a simplified data flow chart as .png to facilitate the understanding of "MC\_modelling\_testing\_data.py"&#xD;
&#xD;
 - python scripts to compute the testing solution permittivities "Medium\_RelativePermittvity\_Calculator.py" and conductivities "Medium\_Conductivity\_Calculator.py"&#xD;
 &#xD;
 - an assortment of scanning electron micrographs depicting the coated IDE structures&#xD;
&#xD;
#### 5 ZIF\-8 coated IDE data&#xD;
- impedance spectra collected with the&#xD;
 - uncoated 10 µm electrode chips and the DRMs: 1-butanol, ethanol and air to obtain C\_Par and K\_Cell&#xD;
 - ZIF-8 coated 10 µm electrode chip and the testing media: air, ethanol and 1 mM KCl dissolved in ethanol&#xD;
&#xD;
- an assortment of scanning electron micrographs depicting the ZIF8-coating on the IDE structures as well as on the silicon and gold surfaces</description>
   </descriptions>
   <alternateIdentifiers>
      <alternateIdentifier alternateIdentifierType="KITopen-DOI">10.5445/IR/1000150710</alternateIdentifier>
   </alternateIdentifiers>
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