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DTSTART:20150925T130000
DTEND:20150925T160000
SUMMARY:The 2015 DCAMM Annual Seminar Speaker
DESCRIPTION:<p style="text-align: center;"><strong>Professor Julia R. Greer, <br>\nCalifornia Institute of Technology, USA <br>\n</strong></p>\n<p>will give the lecture </p>\n<p style="text-align: center;"><strong>"Materials by Design: <br>\n3-Dimensional Architected Nanostructured Meta-Materials" </strong></p>\n<p><strong>Abstract:</strong> <br>\n<br>\n<span style="color: black;">Creation </span><span style="color: black;">of extremely strong yet ultra-light materials can be achieved by capitalizing </span><span style="color: black;">on the hierarchical design of 3-dimensional </span><span style="color: black;">nano</span><span style="color: black;">-architectures. Such structural&nbsp; metamaterials exhibit superior thermomechanical properties at extremely low mass </span><span style="color: black;">densities (lighter than aerogels), making these solid foams ideal for many scientific </span><span style="color: black;">and technological applications. The dominant deformation mechanisms in such &ldquo;me</span><span style="color: black;">ta-materials&rdquo;, where individual constituent size (nanometers to microns) is&nbsp; </span><span style="color: black;">compara</span><span style="color: black;">ble</span><span style="color: black;"> to the characteristic microstructural length scale of the constituent solid, are </span><span style="color: black;">es</span><span style="color: black;">sentially</span><span style="color: black;"> unknown. To harness the lucrative properties of 3-dimensional </span><span style="color: black;">hierachical </span><span style="color: black;">nanostructures, it is critical to assess mechanical properties at each relevant scale while capturing the overall structural complexity.</span></p>\n<p style="text-align: justify; margin-top: 0pt; margin-bottom: 0pt; margin-left: 0in;">&nbsp;</p>\n<p style="text-align: justify; margin-top: 0pt; margin-bottom: 0pt; margin-left: 0in;"><span style="color: black;">We present the fabrication of 3-dimensional </span><span style="color: black;">nano</span><span style="color: black;">-lattices whose constituents vary in </span><span style="color: black;">size from several nanometers to tens of microns to millimeters. We discuss the de</span><span style="color: black;">formation and mechanical properties of a range of </span><span style="color: black;">nano</span><span style="color: black;">-sized solids with different </span><span style="color: black;">microstructures deformed in an in-situ </span><span style="color: black;">nanomechanical</span><span style="color: black;"> instrument. Attention is </span><span style="color: black;">focu</span><span style="color: black;">sed</span><span style="color: black;"> on the interplay between the internal critical microstructural length scale of&nbsp; ma</span><span style="color: black;">terials</span><span style="color: black;"> and their external limitations in revealing the physical mechanisms which govern the mechanical deformation, where competing material- and structure- induced size effects drive overall properties.</span></p>\n<p style="text-align: justify; margin-top: 0pt; margin-bottom: 0pt; margin-left: 0in;">&nbsp;</p>\n<p style="text-align: justify; margin-top: 0pt; margin-bottom: 0pt; margin-left: 0in;"><span style="color: black;">We focus on the deformation and failure in metallic, ceramic, and glassy </span><span style="color: black;">nano</span><span style="color: black;"> </span><span style="color: black;">struc</span><span style="color: black;">tures</span><span style="color: black;"> and discuss size effects in nanomaterials in the framework of mechanics and </span><span style="color: black;">physics of defects. Specific discussion topics include: fabrication and </span><span style="color: black;">charac</span><span style="color: black;">- </span><span style="color: black;">terization</span><span style="color: black;"> of hierarchical 3-dimensional architected meta-materials for applications in biomedical devices, ultra lightweight batteries, damage-tolerant cellular solids, </span><span style="color: black;">nano</span><span style="color: black;">-mechanical experiments, and flaw sensitivity in fracture of </span><span style="color: black;">nanostructures</span><span style="color: black;">.</span></p>\n&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;
X-ALT-DESC;FMTTYPE=text/html:<p style="text-align: center;"><strong>Professor Julia R. Greer, <br>\nCalifornia Institute of Technology, USA <br>\n</strong></p>\n<p>will give the lecture </p>\n<p style="text-align: center;"><strong>"Materials by Design: <br>\n3-Dimensional Architected Nanostructured Meta-Materials" </strong></p>\n<p><strong>Abstract:</strong> <br>\n<br>\n<span style="color: black;">Creation </span><span style="color: black;">of extremely strong yet ultra-light materials can be achieved by capitalizing </span><span style="color: black;">on the hierarchical design of 3-dimensional </span><span style="color: black;">nano</span><span style="color: black;">-architectures. Such structural&nbsp; metamaterials exhibit superior thermomechanical properties at extremely low mass </span><span style="color: black;">densities (lighter than aerogels), making these solid foams ideal for many scientific </span><span style="color: black;">and technological applications. The dominant deformation mechanisms in such &ldquo;me</span><span style="color: black;">ta-materials&rdquo;, where individual constituent size (nanometers to microns) is&nbsp; </span><span style="color: black;">compara</span><span style="color: black;">ble</span><span style="color: black;"> to the characteristic microstructural length scale of the constituent solid, are </span><span style="color: black;">es</span><span style="color: black;">sentially</span><span style="color: black;"> unknown. To harness the lucrative properties of 3-dimensional </span><span style="color: black;">hierachical </span><span style="color: black;">nanostructures, it is critical to assess mechanical properties at each relevant scale while capturing the overall structural complexity.</span></p>\n<p style="text-align: justify; margin-top: 0pt; margin-bottom: 0pt; margin-left: 0in;">&nbsp;</p>\n<p style="text-align: justify; margin-top: 0pt; margin-bottom: 0pt; margin-left: 0in;"><span style="color: black;">We present the fabrication of 3-dimensional </span><span style="color: black;">nano</span><span style="color: black;">-lattices whose constituents vary in </span><span style="color: black;">size from several nanometers to tens of microns to millimeters. We discuss the de</span><span style="color: black;">formation and mechanical properties of a range of </span><span style="color: black;">nano</span><span style="color: black;">-sized solids with different </span><span style="color: black;">microstructures deformed in an in-situ </span><span style="color: black;">nanomechanical</span><span style="color: black;"> instrument. Attention is </span><span style="color: black;">focu</span><span style="color: black;">sed</span><span style="color: black;"> on the interplay between the internal critical microstructural length scale of&nbsp; ma</span><span style="color: black;">terials</span><span style="color: black;"> and their external limitations in revealing the physical mechanisms which govern the mechanical deformation, where competing material- and structure- induced size effects drive overall properties.</span></p>\n<p style="text-align: justify; margin-top: 0pt; margin-bottom: 0pt; margin-left: 0in;">&nbsp;</p>\n<p style="text-align: justify; margin-top: 0pt; margin-bottom: 0pt; margin-left: 0in;"><span style="color: black;">We focus on the deformation and failure in metallic, ceramic, and glassy </span><span style="color: black;">nano</span><span style="color: black;"> </span><span style="color: black;">struc</span><span style="color: black;">tures</span><span style="color: black;"> and discuss size effects in nanomaterials in the framework of mechanics and </span><span style="color: black;">physics of defects. Specific discussion topics include: fabrication and </span><span style="color: black;">charac</span><span style="color: black;">- </span><span style="color: black;">terization</span><span style="color: black;"> of hierarchical 3-dimensional architected meta-materials for applications in biomedical devices, ultra lightweight batteries, damage-tolerant cellular solids, </span><span style="color: black;">nano</span><span style="color: black;">-mechanical experiments, and flaw sensitivity in fracture of </span><span style="color: black;">nanostructures</span><span style="color: black;">.</span></p>\n&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;

URL:http://www.dcamm.dk/da/Kalender/2015/09/Annual_speaker_2015_DTU
DTSTAMP:20260923T082000Z
UID:{4034B9D4-8763-4744-8B29-65FE2C487251}-20150925T130000-20150925T130000
LOCATION: Meeting Room 1, Building 101, DTU
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