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    <title>Generation and characterization of ultrafine particles in laboratory studies and their mass deposition at the air-liquid interface</title>
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    <namePart>Eleftheriadis, Konstantinos</namePart>
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    <dateIssued>May 2025</dateIssued>
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  <abstract type="Summary">Ultrafine particles (UFPs, ≤100 nm) contribute to air pollution's health impacts, but their toxicity drivers are unclear. This study generated soot UFPs with similar cores but varying chemical loads (e.g., PAHs) and tested them on A549 cells in ALI systems. Higher PAH content increased xenobiotic metabolism, showing chemical composition's role. Soot and copper UFPs, matched physically, revealed higher-than-predicted mass deposition in ALI systems, highlighting model limitations. The method enables precise UFP property control, advancing reproducible toxicity assessments.&lt;eng&gt;</abstract>
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  <note type="statement of responsibility">vorgelegt von Anusmita Das</note>
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  <note>GutachterInnen: Ralf Zimmermann (University of Rostock, Institute of Chemistry) ; Konstantinos Eleftheriadis (Ethniko Kentro Ereunas Physikon Epistemon Demokritos, Athens, GR)</note>
  <note type="thesis">Dissertation Universität Rostock 2025 Kumulative Dissertation</note>
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      <title>Generation and characterization of ultrafine particles in laboratory studies and their mass deposition at the air-liquid interface</title>
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