<?xml version="1.0" encoding="UTF-8"?>
<?xml-stylesheet type="text/xsl" href="/oai-pmh.xsl"?>
<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>2026-09-18T18:48:34Z</responseDate>
  <request identifier="oai:www.ideals.illinois.edu:2142/20967" metadataPrefix="etdms" verb="GetRecord">https://www.ideals.illinois.edu/oai-pmh</request>
  <GetRecord>
    <record>
      <header>
        <identifier>oai:www.ideals.illinois.edu:2142/20967</identifier>
        <datestamp>2023-07-10</datestamp>
        <setSpec>col_2142_5131</setSpec>
        <setSpec>col_2142_14789</setSpec>
        <setSpec>com_2142_5130</setSpec>
        <setSpec>com_2142_14788</setSpec>
        <setSpec>com_2142_8903</setSpec>
      </header>
      <metadata>
        <thesis xmlns="http://www.ndltd.org/standards/metadata/etdms/1.1/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:dc="http://purl.org/dc/elements/1.1/" xsi:schemaLocation="http://www.ndltd.org/standards/metadata/etdms/1.1/ http://www.ndltd.org/standards/metadata/etdms/1.1/etdms11.xsd http://purl.org/dc/elements/1.1/ http://www.ndltd.org/standards/metadata/etdms/1.1/etdmsdc.xsd">
          <dc:contributor>Dlott, Dana D.</dc:contributor>
          <dc:creator>Lee, I-Yin Sandy</dc:creator>
          <dc:date>2011-05-07T12:54:26Z</dc:date>
          <dc:date>2011-05-07T12:54:26Z</dc:date>
          <dc:date>10000-01-01</dc:date>
          <dc:date>1995</dc:date>
          <dc:description>Photothermal laser ablation is studied using poly-(methyl methacrylate) films doped with a dye, IR-165, which functions as a molecular heater and thermometer. Direct optical measurements of temperature are performed on samples heated by 100 ns near-IR pulses at 1.064 $\mu\rm m,$ at rates dT/dt $\approx 5 \times 10\sp9$ deg/s. Below ablation threshold, the heat capacity measured by optical calorimetry is precisely the value obtained by conventional calorimetry. At ablation threshold, the peak surface temperature is $\rm T\sb{abl} = 600\sp\circ C$ and the weight-fraction of material decomposed at ablation time is $\chi\sb{th} = 0.02.$ With increasing pulse energy, the fraction decomposed increases and a more forceful ablation is observed, but the surface temperature does not continue to increase past $\rm T\sb{lim} = 715\sp\circ C,$ which is determined to be the limiting temperature for thermal decomposition.</dc:description>
          <dc:description>Using picosecond optical microscopy on shock targets with different thickness aluminum layers, it was found that the shock required 0.5 ns to form and then it propagated for a few ns with a constant velocity of 8.3 km/s (8.3 nm/ps), indicating a shock pressure of 49 GPa. The arrival time jitter of many hundreds of shocks, at an aluminum/polymer interface was found to be $\pm$50 ps. The shock propagation through a polymer, polyester, was studied by observing the arrival of the front at a 50 nm thick nanogauge embedded in the polymer. When the shock was transmitted from the aluminum to a polymer layer, its velocity was 5.5 km/s, indicating a shock pressure of 14 GPa, in good agreement with shock impedance calculations.</dc:description>
          <dc:description>Microfabricated shock target arrays with embedded thin layers of dye-doped polymer films, termed optical nanogauges, are used to measure the velocity and pressure $\rm (P\sim 2$ GPa) of picosecond laser driven shock waves in polymers. The $\sim$60 ps rise time of absorbance changes of the dye appears to be limited by the transit time of the shock across the 300 nm gauge. The rise time of the 2 GPa shock front in poly-methyl methacrylate is $&lt;$60 ps. Picosecond dynamics behind the shock front, which are likely due to transient overheating and subsequent fast cooling of the dye molecules, are observed for the first time.</dc:description>
          <dc:description>Made available in DSpace on 2011-05-07T12:54:26Z (GMT). No. of bitstreams: 2
license.txt: 4922 bytes, checksum: 910b249b4beec47e7ab768910c8f966f (MD5)
9543643.pdf: 5594102 bytes, checksum: 9afe325267350ff80c67bd98cde8640b (MD5)
  Previous issue date: 1995</dc:description>
          <dc:description>Item marked as restricted to the 'UIUC Users [automated]' Group (id=2) by Howard Ding (hding2@illinois.edu) on 2011-05-07T14:47:35Z
Item is restricted indefinitely.</dc:description>
          <dc:description>Restriction data tranferred 2014-07-01T11:21:29-05:00
Original Data
Group with Access UIUC Users [automated]
Release Date: none
Reason: ETDs are only available to UIUC Users without author permission</dc:description>
          <dc:description>ETDs are only available to UIUC Users without author permission</dc:description>
          <dc:description>U of I Only</dc:description>
          <dc:identifier>AAI9543643</dc:identifier>
          <dc:identifier>(UMI)AAI9543643</dc:identifier>
          <dc:identifier>http://hdl.handle.net/2142/20967</dc:identifier>
          <dc:language>eng</dc:language>
          <dc:rights>Copyright 1995 Lee, I-Yin Sandy</dc:rights>
          <dc:subject>Chemistry, Physical</dc:subject>
          <dc:title>The study of ultrafast dynamics behind a solid-state shock front using optical nanogauges</dc:title>
          <dc:type>text</dc:type>
          <degree>
            <department>Chemistry</department>
            <discipline>Chemistry</discipline>
            <grantor>University of Illinois at Urbana-Champaign</grantor>
            <level>Dissertation</level>
            <name>Ph.D.</name>
          </degree>
        </thesis>
      </metadata>
    </record>
  </GetRecord>
</OAI-PMH>
