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        <affiliation>University of Bath</affiliation>
        <contact>FALSE</contact>
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          <given>Emily</given>
        </name>
        <id>el605@bath.ac.uk</id>
        <affiliation>University of Bath</affiliation>
        <contact>FALSE</contact>
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          <given>Ute</given>
        </name>
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        <affiliation>University of Bath</affiliation>
        <contact>FALSE</contact>
      </item>
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          <family>Marken</family>
          <given>Frank</given>
        </name>
        <id>F.Marken@bath.ac.uk</id>
        <orcid>0000-0003-3177-4562</orcid>
        <affiliation>University of Bath</affiliation>
        <contact>FALSE</contact>
      </item>
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          <family>Leese</family>
          <given>Hannah</given>
        </name>
        <id>H.S.Leese@bath.ac.uk</id>
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        <affiliation>University of Bath</affiliation>
        <contact>TRUE</contact>
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          <given>Tony</given>
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        <id>ak3264@bath.ac.uk</id>
        <orcid>0000-0002-4777-7103</orcid>
        <affiliation>University of Bath</affiliation>
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          <given>Yasemin</given>
        </name>
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        <orcid>0000-0003-4715-3082</orcid>
        <affiliation>University of Bath</affiliation>
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          <given>Joe</given>
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        <affiliation>University of Bath</affiliation>
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        <name>
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          <given>Emily</given>
        </name>
        <id>el605@bath.ac.uk</id>
        <affiliation>University of Bath</affiliation>
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          <family>Jungwirth</family>
          <given>Ute</given>
        </name>
        <id>U.Jungwirth@bath.ac.uk</id>
        <orcid>0000-0002-4673-3096</orcid>
        <affiliation>University of Bath</affiliation>
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          <given>Frank</given>
        </name>
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        <affiliation>University of Bath</affiliation>
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          <family>Leese</family>
          <given>Hannah</given>
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        <affiliation>University of Bath</affiliation>
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    </contributors>
    <title>Dataset for &quot;Conductive polymer-coated 3D printed microneedles: biocompatible platforms for minimally invasive biosensing interfaces&quot;</title>
    <subjects>
      <item>BV0030</item>
      <item>CA0030</item>
      <item>CA0040</item>
    </subjects>
    <divisions>
      <item>dept_chem_eng</item>
    </divisions>
    <abstract>This dataset includes all the data presented and analyzed in the aforementioned paper, &quot;Conductive polymer-coated 3D printed microneedles: biocompatible platforms for minimally invasive biosensing interfaces&quot;. These include: CAD designs, SEM and AFM micrographs, FTIR, Raman, and EDS spectra, water sessile drop images, DMA compression tests, ex vivo skin penetration bright-field microscopy images, cyclic voltammograms, four-point probe resistivity measurements, battery-LED system photographs, and cytotoxicity assay measurements.</abstract>
    <date>2023-01-03</date>
    <publisher>University of Bath</publisher>
    <full_text_status>restricted</full_text_status>
    <corp_contributors>
      <item>
        <type>RightsHolder</type>
        <corpname>University of Bath</corpname>
      </item>
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    <funding>
      <item>
        <funder_name>Engineering and Physical Sciences Research Council</funder_name>
        <funder_id>https://doi.org/10.13039/501100000266</funder_id>
        <grant_id>EP/V010859/1</grant_id>
        <project_name>Minimally Invasive Molecularly Imprinted Conductive Nanoneedle Sensors</project_name>
      </item>
      <item>
        <funder_name>Royal Society</funder_name>
        <funder_id>https://doi.org/10.13039/501100000288</funder_id>
        <grant_id>RGS\R1\201185</grant_id>
        <project_name>Molecularly Imprinted Conductive Microneedles</project_name>
      </item>
    </funding>
    <research_centres>
      <item>cent_c3bio</item>
    </research_centres>
    <collection_method>The methodology can be found in the associated paper.</collection_method>
    <techinfo>Equipment:

1. Formlabs form 3, FormWash and FormCure (FormLabs, USA);
2. Zepto Model 2 Diener Plasma Reactor (Diener Electronics, Germany);
3. iD7 attenuated total reflectance (ATR)-mode of a Nicolet™ iS5 FTIR spectrometer (Thermo Fisher Scientific, USA);
4. inVia™ confocal Raman microscope (Renishaw, UK);
5. Contact angle measurement system, OCA 25 (Data Physics, UK);
6. SU3900 scanning electron microscopy (SEM) instrument (Hitachi, Japan);
7. Jupiter XR (Oxford Instruments) atomic force microscope (AFM) was used in blueDrive™ Tapping Mode with AC160TS-R3 tips;
8. 10X-200X USB digital microscope with a 0.3-megapixel resolution (United Scope, Netherlands);
9. Jandel RM3000 (Jandel Engineering, UK);
10. µAutolab type II potentiostat/galvanostat (Metrohm, Switzerland);
11. Mettler Toledo DMA1 (Mettler Toledo, USA) dynamic mechanical analyser (DMA);
12. BMG FLUOstar Omega (BMG Labtech, UK) plate reader.

Software:

1. Excel and PowerPoint (v. 2016, Microsoft, USA);
2. Origin (v. 2022b, Electronic Arts);
3. Fiji-ImageJ, contact angle add-on, v.1.52 (National Institutes of Health, USA)
4. Spectragryph (v. 1.2, effemm2.de);
5. Nova (v. 2.1, Metrohm, Switzerland);
6. AZtec software package (Oxford Instruments, UK);
7. AutoCAD (Autodesk, USA);
8. Prism (v.9, GraphPad Software, USA).</techinfo>
    <methodurl>
      <item>https://doi.org/10.1002/smll.202206301</item>
    </methodurl>
    <language>en</language>
    <version>1</version>
    <doi>10.15125/BATH-01210</doi>
    <related_resources>
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        <link>https://doi.org/10.1002/smll.202206301</link>
        <type>pub</type>
      </item>
    </related_resources>
    <access_types>
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      <item>loggedin</item>
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    <access_arrangements>The MN CAD design file (CAD design.zip) can be accessed by bone fide researchers only.</access_arrangements>
    <resourcetype>
      <general>Dataset</general>
    </resourcetype>
  </eprint>
</eprints>
