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<channel><title><![CDATA[W Materials - Home]]></title><link><![CDATA[https://www.wmaterials.net/home]]></link><description><![CDATA[Home]]></description><pubDate>Wed, 19 Nov 2025 17:31:21 -0600</pubDate><generator>Weebly</generator><item><title><![CDATA[Unique temperature dependence of elastic and plastic deformation behavior in NbTaTiV high entropy alloys]]></title><link><![CDATA[https://www.wmaterials.net/home/unique-temperature-dependence-of-elastic-and-plastic-deformation-behavior-in-nbtativ-high-entropy-alloys]]></link><comments><![CDATA[https://www.wmaterials.net/home/unique-temperature-dependence-of-elastic-and-plastic-deformation-behavior-in-nbtativ-high-entropy-alloys#comments]]></comments><pubDate>Wed, 09 Sep 2020 19:33:21 GMT</pubDate><category><![CDATA[High entropy alloy]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/unique-temperature-dependence-of-elastic-and-plastic-deformation-behavior-in-nbtativ-high-entropy-alloys</guid><description><![CDATA[We recently discovered some surprising properties in the NbTaTiV high-entropy alloys. For example, the alloy shows good elastic isotropy at room temperature, but with the increase of temperature, its elastic anisotropy actually increases. Such temperature dependence of elastic anisotropy is not induced by phase transformations, but is an intrinsic feature of the BCC high entropy alloy.&nbsp;Our first-principles and machine learning predictions are in good agreement with experimental observations [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><font size="3">We recently discovered some surprising properties in the NbTaTiV high-entropy alloys. For example, the alloy shows good elastic isotropy at room temperature, but with the increase of temperature, its elastic anisotropy actually increases. Such temperature dependence of elastic anisotropy is not induced by phase transformations, but is an intrinsic feature of the BCC high entropy alloy.&nbsp;Our first-principles and machine learning predictions are in good agreement with experimental observations. These results are reported in <a href="https://advances.sciencemag.org/content/6/37/eaaz4748" target="_blank" title="">an article</a> on <em>Science Advances</em>.<br /><br />The study was in collaboration with Prof. Peter Liaw's group at University of Tennessee and Prof. Yi-Chia Chou's group at National Chiao Tung University in Taiwan.</font></div>  <div><div class="wsite-image wsite-image-border-none " style="padding-top:10px;padding-bottom:10px;margin-left:0;margin-right:0;text-align:center"> <a> <img src="https://www.wmaterials.net/uploads/6/5/9/9/65992629/f3-large_orig.jpg" alt="Picture" style="width:auto;max-width:100%" /> </a> <div style="display:block;font-size:90%"></div> </div></div>]]></content:encoded></item><item><title><![CDATA[NSF CAREER award]]></title><link><![CDATA[https://www.wmaterials.net/home/nsf-career-award]]></link><comments><![CDATA[https://www.wmaterials.net/home/nsf-career-award#comments]]></comments><pubDate>Thu, 23 Jan 2020 17:47:44 GMT</pubDate><category><![CDATA[Uncategorized]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/nsf-career-award</guid><description><![CDATA[Excited to receive a NSF CAREER award on first-principles and machine learning studies of high-entropy alloys! The project will be&nbsp;jointly supported by the Division of Materials Research and the NSF Office of Advanced Cyberinfrastructure.https://www.nsf.gov/awardsearch/showAward?AWD_ID=1945380 [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><font size="3">Excited to receive a NSF CAREER award on first-principles and machine learning studies of high-entropy alloys! The project will be&nbsp;jointly supported by the Division of Materials Research and the NSF Office of Advanced Cyberinfrastructure.<br /></font><br /><a href="https://www.nsf.gov/awardsearch/showAward?AWD_ID=1945380">https://www.nsf.gov/awardsearch/showAward?AWD_ID=1945380</a></div>]]></content:encoded></item><item><title><![CDATA[New NSF collaborative project on artificial intelligence for multiscale materials design]]></title><link><![CDATA[https://www.wmaterials.net/home/new-nsf-collaborative-project-on-artificial-intelligence-for-multiscale-materials-design]]></link><comments><![CDATA[https://www.wmaterials.net/home/new-nsf-collaborative-project-on-artificial-intelligence-for-multiscale-materials-design#comments]]></comments><pubDate>Sat, 28 Sep 2019 19:59:46 GMT</pubDate><category><![CDATA[Uncategorized]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/new-nsf-collaborative-project-on-artificial-intelligence-for-multiscale-materials-design</guid><description><![CDATA[We are excited to be part of a team awarded a 2 million NSF grant on developing interpretable augmented intelligence for multiscale materials discovery. The multi-disciplinary project will be in collaboration with research groups at University of Colorado Boulder (Hendrik Heinz), Ohio State University (Yusu Wang), Johns Hopkins University (Yanxun Xu), and Columbia University (Steve Sun).&nbsp;https://www.nsf.gov/awardsearch/showAward?AWD_ID=1940114 [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><font size="3">We are excited to be part of a team awarded a 2 million NSF grant on developing interpretable augmented intelligence for multiscale materials discovery. The multi-disciplinary project will be in collaboration with research groups at University of Colorado Boulder (Hendrik Heinz), Ohio State University (Yusu Wang), Johns Hopkins University (Yanxun Xu), and Columbia University (Steve Sun).&nbsp;</font><br /><br /><a href="https://www.nsf.gov/awardsearch/showAward?AWD_ID=1940114&amp;HistoricalAwards=false">https://www.nsf.gov/awardsearch/showAward?AWD_ID=1940114</a></div>]]></content:encoded></item><item><title><![CDATA[High school summer research program - YR 2]]></title><link><![CDATA[https://www.wmaterials.net/home/high-school-summer-research-program-yr-2]]></link><comments><![CDATA[https://www.wmaterials.net/home/high-school-summer-research-program-yr-2#comments]]></comments><pubDate>Sun, 28 Jul 2019 21:55:05 GMT</pubDate><category><![CDATA[News]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/high-school-summer-research-program-yr-2</guid><description><![CDATA[ 	 		 			 				 					 						  &#8203;Grace Fan and Chris Yang from Adlai E. Stevenson High School joined our group this summer as part of the SPARK research program.Grace and Chris learned the fundamentals of materials science and machine learning methods. They also helped design the pages on mechanical properties and machine learning for our learning app CORAL.&#8203;&nbsp;   					 								 					 						          					 							 		 	  [...] ]]></description><content:encoded><![CDATA[<div><div class="wsite-multicol"><div class="wsite-multicol-table-wrap" style="margin:0 -15px;"> 	<table class="wsite-multicol-table"> 		<tbody class="wsite-multicol-tbody"> 			<tr class="wsite-multicol-tr"> 				<td class="wsite-multicol-col" style="width:52.242424242424%; padding:0 15px;"> 					 						  <div class="paragraph"><br /><br /><font size="3"><br />&#8203;Grace Fan and Chris Yang from Adlai E. Stevenson High School joined our group this summer as part of the SPARK research program.<br /><br />Grace and Chris learned the fundamentals of materials science and machine learning methods. They also helped design the pages on mechanical properties and machine learning for our learning app CORAL.<br /></font><br />&#8203;&nbsp;</div>   					 				</td>				<td class="wsite-multicol-col" style="width:47.757575757576%; padding:0 15px;"> 					 						  <div><div class="wsite-image wsite-image-border-none " style="padding-top:10px;padding-bottom:10px;margin-left:0px;margin-right:10px;text-align:center"> <a href='https://www.wmaterials.net/uploads/6/5/9/9/65992629/img-20190711-112315_orig.jpg' rel='lightbox' onclick='if (!lightboxLoaded) return false'> <img src="https://www.wmaterials.net/uploads/6/5/9/9/65992629/published/img-20190711-112315.jpg?1564351829" alt="Picture" style="width:auto;max-width:100%" /> </a> <div style="display:block;font-size:90%"></div> </div></div>   					 				</td>			</tr> 		</tbody> 	</table> </div></div></div>]]></content:encoded></item><item><title><![CDATA[WISER grant on lithium-air batteries]]></title><link><![CDATA[https://www.wmaterials.net/home/wiser-grant-on-lithium-air-batteries]]></link><comments><![CDATA[https://www.wmaterials.net/home/wiser-grant-on-lithium-air-batteries#comments]]></comments><pubDate>Mon, 15 Jul 2019 05:00:00 GMT</pubDate><category><![CDATA[Uncategorized]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/wiser-grant-on-lithium-air-batteries</guid><description><![CDATA[We are glad to receive another grant from&nbsp;Wanger Institute for Sustainable Energy Research (WISER) to develop bi-functional heteroatom catalysts for high efficiency and long cycle life lithium-air batteries. The work will be in collaboration with Prof. Mohammad Asadi and Prof. Reza Shahbazian-Yassar (UIC).&nbsp; [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><font size="3">We are glad to receive another grant from&nbsp;<span style="color:rgb(85, 85, 85)">Wanger Institute for Sustainable Energy Research (WISER) to develop bi-functional heteroatom catalysts for high efficiency and long cycle life lithium-air batteries. The work will be in collaboration with Prof. Mohammad Asadi and Prof. Reza Shahbazian-Yassar (UIC).&nbsp;</span></font></div>]]></content:encoded></item><item><title><![CDATA[NbTaTiV: A new refractory high entropy alloy developed with an integrated computational and experimental design]]></title><link><![CDATA[https://www.wmaterials.net/home/nbtativ-a-new-refractory-high-entropy-alloy-developed-with-an-integrated-computational-and-experimental-design]]></link><comments><![CDATA[https://www.wmaterials.net/home/nbtativ-a-new-refractory-high-entropy-alloy-developed-with-an-integrated-computational-and-experimental-design#comments]]></comments><pubDate>Sun, 30 Sep 2018 05:00:00 GMT</pubDate><category><![CDATA[High entropy alloy]]></category><category><![CDATA[Research]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/nbtativ-a-new-refractory-high-entropy-alloy-developed-with-an-integrated-computational-and-experimental-design</guid><description><![CDATA[In collaboration with Prof. Peter Liaw's group at University of Tennessee, we recently designed a new single-phase BCC refractory high-entropy alloy (HEA) NbTaTiV.&nbsp;The novel HEA exhibits high yield strength and ductility at both room and high temperatures.&nbsp;First-principles approaches based on density functional theory (DFT) provided critical information on the thermodynamic stability and lattice distortions in the alloy design. Integrated with the CALPHAD method and in situ structural  [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><br /><font size="3">In collaboration with Prof. Peter Liaw's group at University of Tennessee, we recently designed a new single-phase BCC refractory high-entropy alloy (HEA) NbTaTiV.&nbsp;<span style="color:rgb(85, 85, 85)">The novel HEA exhibits high yield strength and ductility at both room and high temperatures.&nbsp;</span>First-principles approaches based on density functional theory (DFT) provided critical information on the thermodynamic stability and lattice distortions in the alloy design. Integrated with the CALPHAD method and <em>in situ</em> structural characterizations, a<span style="color:rgb(85, 85, 85)">&nbsp;heat-treatment process was developed that eliminates structural and chemical inhomogeneity.&nbsp;<br />&#8203;</span></font><br /><span style="color:rgb(85, 85, 85)">"</span><a href="https://doi.org/10.1016/j.actamat.2018.08.053" target="_blank">Lattice distortion in a strong and ductile refractory high-entropy alloy</a><span style="color:rgb(85, 85, 85)">",&nbsp;</span><em style="color:rgb(85, 85, 85)">Acta Materialia</em><span style="color:rgb(85, 85, 85)">, 160, 158-172 (2018) [</span><a href="https://www.wmaterials.net/uploads/6/5/9/9/65992629/1-s2.0-s1359645418306906-main.pdf" target="_blank">PDF</a><span style="color:rgb(85, 85, 85)">]</span></div>  <div><div class="wsite-image wsite-image-border-none " style="padding-top:10px;padding-bottom:10px;margin-left:0px;margin-right:0px;text-align:center"> <a> <img src="https://www.wmaterials.net/uploads/6/5/9/9/65992629/1-s2-0-s1359645418306906-fx1-lrg_orig.jpg" alt="Picture" style="width:auto;max-width:100%" /> </a> <div style="display:block;font-size:90%"></div> </div></div>]]></content:encoded></item><item><title><![CDATA[New evidence on the phase transformation of HfNbTaTiZr high-entropy alloy at intermediate temperatures]]></title><link><![CDATA[https://www.wmaterials.net/home/new-evidence-on-the-phase-transformation-of-hfnbtatizr-high-entropy-alloy-at-intermediate-temperatures]]></link><comments><![CDATA[https://www.wmaterials.net/home/new-evidence-on-the-phase-transformation-of-hfnbtatizr-high-entropy-alloy-at-intermediate-temperatures#comments]]></comments><pubDate>Tue, 28 Aug 2018 05:00:00 GMT</pubDate><category><![CDATA[High entropy alloy]]></category><category><![CDATA[Research]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/new-evidence-on-the-phase-transformation-of-hfnbtatizr-high-entropy-alloy-at-intermediate-temperatures</guid><description><![CDATA[Refractory high-entropy alloys (RHEA) are promising structural materials for high-temperature thermal-harsh environment. The HfNbTaTiZr RHEA is a good example that shows a rare combination of high strength and good ductility. In real-world applications, high-temperature alloys have to maintain a high phase stability not only at high temperatures, but also for&nbsp;a wide range of temperatures for a prolonged service time. While the&nbsp;HfNbTaTiZr RHEA&nbsp;is generally regarded as a single-phas [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><font size="3">Refractory high-entropy alloys (RHEA) are promising structural materials for high-temperature thermal-harsh environment. The HfNbTaTiZr RHEA is a good example that shows a rare combination of high strength and good ductility. In real-world applications, high-temperature alloys have to maintain a high phase stability not only at high temperatures, but also for&nbsp;a wide range of temperatures for a prolonged service time. While the&nbsp;<span style="color:rgb(85, 85, 85)">HfNbTaTiZr RHEA&nbsp;</span>is generally regarded as a single-phase BCC solid solution, recent studies by Senkov <em>et al </em>suggest phase decomposition after cold-rolling at 800 &deg;C.&nbsp;Controversy still exists for the phase stability of the HfNbTaTiZr RHEA at intermediate temperatures. In the present work, we investigated the phase decomposition of the RHEA&nbsp;at different temperatures (500&ndash;1000 &deg;C). The formation of BCC Ta-Nb-rich and HCP HfZr-rich precipitates, as well as their preferred orientation to the BCC matrix, are elucidated from experiments. Thermodynamic modeling shows good agreement with experiments.<br /></font><br /><span style="color:rgb(85, 85, 85)">"</span><a href="https://doi.org/10.1016/j.scriptamat.2018.08.032" target="_blank">Phase transformations of HfNbTaTiZr high-entropy alloy at intermediate temperatures</a><span style="color:rgb(85, 85, 85)">",&nbsp;</span><em style="color:rgb(85, 85, 85)">Scripta Materialia</em><span style="color:rgb(85, 85, 85)">, 158, 50-56 (2019) [</span><a href="https://www.wmaterials.net/uploads/6/5/9/9/65992629/1-s2.0-s1359646218305086-main.pdf" target="_blank">PDF</a><span style="color:rgb(85, 85, 85)">]</span></div>  <div><div class="wsite-image wsite-image-border-none " style="padding-top:10px;padding-bottom:10px;margin-left:0;margin-right:0;text-align:center"> <a> <img src="https://www.wmaterials.net/uploads/6/5/9/9/65992629/1-s2-0-s1359646218305086-ga1-lrg_orig.jpg" alt="Picture" style="width:auto;max-width:100%" /> </a> <div style="display:block;font-size:90%"></div> </div></div>]]></content:encoded></item><item><title><![CDATA[WISER grant on catalysts for CO2 reduction]]></title><link><![CDATA[https://www.wmaterials.net/home/wiser-grant-on-catalysts-for-co2-reduction]]></link><comments><![CDATA[https://www.wmaterials.net/home/wiser-grant-on-catalysts-for-co2-reduction#comments]]></comments><pubDate>Fri, 27 Jul 2018 05:00:00 GMT</pubDate><category><![CDATA[News]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/wiser-grant-on-catalysts-for-co2-reduction</guid><description><![CDATA[We are glad to receive a grant from Wanger Institute for Sustainable Energy Research (WISER) to develop advanced catalysts for photo-electrocatalytic conversion of CO2 to energy rich fuels. The work will be in collaboration with Prof. Mohammad Asadi, Prof. Carlo Segre, and Prof. Reza Shahbazian-Yassar (UIC).&nbsp; [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><font size="3">We are glad to receive a grant from Wanger Institute for Sustainable Energy Research (WISER) to develop advanced catalysts for photo-electrocatalytic conversion of CO2 to energy rich fuels. The work will be in collaboration with Prof. Mohammad Asadi, Prof. Carlo Segre, and Prof. Reza Shahbazian-Yassar (UIC).&nbsp;</font></div>]]></content:encoded></item><item><title><![CDATA[Carbide morphologies in high refractory content powder-processed Ni-based superalloys]]></title><link><![CDATA[https://www.wmaterials.net/home/carbide-morphologies-in-high-refractory-content-powder-processed-ni-based-superalloys]]></link><comments><![CDATA[https://www.wmaterials.net/home/carbide-morphologies-in-high-refractory-content-powder-processed-ni-based-superalloys#comments]]></comments><pubDate>Thu, 12 Apr 2018 05:00:00 GMT</pubDate><category><![CDATA[Superalloy]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/carbide-morphologies-in-high-refractory-content-powder-processed-ni-based-superalloys</guid><description><![CDATA[Carbide precipitates in Ni-based superalloys are often desirable phases that can improve high-temperature properties as well as aid in microstructural refinement of the material; however, they can also serve as crack initiation sites during fatigue. To date, the knowledge on carbide formation has mostly originated from assessments of cast and wrought Ni-based superalloys. As powder-processed Ni-based superalloys are becoming increasingly widespread, understanding the different mechanisms by whic [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><font size="3">Carbide precipitates in Ni-based superalloys are often desirable phases that can improve high-temperature properties as well as aid in microstructural refinement of the material; however, they can also serve as crack initiation sites during fatigue. To date, the knowledge on carbide formation has mostly originated from assessments of cast and wrought Ni-based superalloys. As powder-processed Ni-based superalloys are becoming increasingly widespread, understanding the different mechanisms by which they form becomes increasingly important. In the present work, we performed detailed characterization of MC carbides present in two experimental high Nb-content powder-processed Ni-based superalloys and revealed that Hf additions affect the resultant carbide morphologies. This morphology difference was attributed to a higher magnitude of elastic strain energy along the interface associated with Hf being soluble in the MC carbide lattice. The characterization results of the segregation behavior of Hf in the MC carbides and the subsequent influence on their morphology were compared to density functional theory calculations and found to be in good agreement, suggesting that computational modeling can successfully be used to predict carbide features.<br /></font><br />&#8203;<span style="color:rgb(85, 85, 85)">"</span><a href="http://www.doi.org/10.1007/s11661-018-4587-2" target="_blank">MC carbide characterization in high refractory content powder-processed Ni-based superalloys</a><span style="color:rgb(85, 85, 85)">",&nbsp;</span><em style="color:rgb(85, 85, 85)">Metallurgical and Materials Transactions A</em><span style="color:rgb(85, 85, 85)">, 49, 2340-2351 (2018) [</span><a href="https://www.wmaterials.net/uploads/6/5/9/9/65992629/antonov2018_article_mccarbidecharacterizationinhig.pdf" target="_blank">PDF</a><span style="color:rgb(85, 85, 85)">]</span></div>  <div><div class="wsite-image wsite-image-border-none " style="padding-top:10px;padding-bottom:10px;margin-left:0;margin-right:0;text-align:center"> <a> <img src="https://www.wmaterials.net/uploads/6/5/9/9/65992629/website_orig.png" alt="Picture" style="width:auto;max-width:100%" /> </a> <div style="display:block;font-size:90%"></div> </div></div>]]></content:encoded></item><item><title><![CDATA[An open database of experimental formation enthalpy data for &gt; 1200 metallic phases released]]></title><link><![CDATA[https://www.wmaterials.net/home/an-open-database-of-experimental-formation-enthalpy-data-for-gt-1200-metallic-phases-released]]></link><comments><![CDATA[https://www.wmaterials.net/home/an-open-database-of-experimental-formation-enthalpy-data-for-gt-1200-metallic-phases-released#comments]]></comments><pubDate>Wed, 18 Oct 2017 05:00:00 GMT</pubDate><category><![CDATA[Research]]></category><category><![CDATA[Thermodynamics]]></category><guid isPermaLink="false">https://www.wmaterials.net/home/an-open-database-of-experimental-formation-enthalpy-data-for-gt-1200-metallic-phases-released</guid><description><![CDATA[The standard enthalpy of formation is a fundamental thermodynamic property that determines the phase stability of a compound, which can be coupled with other thermodynamic data to calculate phase diagrams. Calorimetry provides the only direct method by which the standard enthalpy of formation is experimentally measured. However, the measurement is often a time and energy intensive process. We present a dataset of enthalpies of formation measured by high-temperature calorimetry. The phases measur [...] ]]></description><content:encoded><![CDATA[<div class="paragraph"><font size="3"><font color="#222222">The standard enthalpy of formation is a fundamental thermodynamic property that determines the phase stability of a compound, which can be coupled with other thermodynamic data to calculate phase diagrams. Calorimetry provides the only direct method by which the standard enthalpy of formation is experimentally measured. However, the measurement is often a time and energy intensive process. We present a dataset of enthalpies of formation measured by high-temperature calorimetry. The phases measured in this dataset include intermetallic compounds with transition metal and rare-earth elements, metal borides, metal carbides, and metallic silicides. The dataset contains 1,276 entries on experimental enthalpy of formation values and structural information. Most of the entries are for binary compounds but ternary and quaternary compounds are being added as they become available. </font><br /><br /><font color="#222222">The dataset also contains predictions of enthalpy of formation from first-principles calculations for comparison. We compared DFT formation enthalpy values from <a href="https://materialsproject.org/" target="_blank">the Materials Project</a> and <a href="http://oqmd.org/" target="_blank">OQMD</a>, and identified problematic systems that show substantial discrepancies&nbsp;between experiments and PBE-DFT.</font><br /><br />The most recent database can be queried from our website:&nbsp;<br /><a href="http://tptc.iit.edu/" target="_blank">http://tptc.iit.edu/</a><br />The data file can be accessed from Figshare:&nbsp;<br /><a href="https://doi.org/10.6084/m9.figshare.c.3822835">https://doi.org/10.6084/m9.figshare.c.3822835</a><span style="color:rgb(34, 34, 34)">&nbsp;</span><br /></font><br /><a href="https://doi.org/10.1038/sdata.2017.162" target="_blank">Experimental formation enthalpies for intermetallic phases and other inorganic compounds</a><span style="color:rgb(85, 85, 85)">",&nbsp;</span><em style="color:rgb(85, 85, 85)">Scientific Data</em><span style="color:rgb(85, 85, 85)">, 4, 170162 (2017) [</span><a href="https://www.wmaterials.net/uploads/6/5/9/9/65992629/sdata2017162.pdf" target="_blank">PDF</a><span style="color:rgb(85, 85, 85)">]</span></div>  <div><div class="wsite-image wsite-image-border-none " style="padding-top:10px;padding-bottom:10px;margin-left:0;margin-right:0;text-align:left"> <a> <img src="https://www.wmaterials.net/uploads/6/5/9/9/65992629/editor/website_1.png?1538419841" alt="Picture" style="width:auto;max-width:100%" /> </a> <div style="display:block;font-size:90%"></div> </div></div>]]></content:encoded></item></channel></rss>