Theoretical insight into the solar thermal absorption property of ultra-high temperature ceramics TMB2 (TM = Ti, Zr, and Hf)

2021 ◽  
Vol 225 ◽  
pp. 111032
Author(s):  
Huimin Xiang ◽  
Fuzhi Dai ◽  
Yanchun Zhou
Author(s):  
Zuowei Chen ◽  
Liquan Wang ◽  
Jiaping Lin ◽  
Lei Du

High-temperature phthalonitrile resins have a wide range of applications, and understanding their curing mechanism is of great importance for academic research and engineering applications. However, the actual curing mechanism is...


Author(s):  
Lun Feng ◽  
William G. Fahrenholtz ◽  
Donald W. Brenner

Herein, we critically evaluate computational and experimental studies in the emerging field of high-entropy ultra-high-temperature ceramics. High-entropy ultra-high-temperature ceramics are candidates for use in extreme environments that include temperatures over 2,000°C, heat fluxes of hundreds of watts per square centimeter, or irradiation from neutrons with energies of several megaelectron volts. Computational studies have been used to predict the ability to synthesize stable high-entropy materials as well as the resulting properties but face challenges such asthe number and complexity of unique bonding environments that are possible for these compositionally complex compounds. Experimental studies have synthesized and densified a large number of different high-entropy borides and carbides, but no systematic studies of composition-structure-property relationships have been completed. Overall, this emerging field presents a number of exciting research challenges and numerous opportunities for future studies. Expected final online publication date for the Annual Review of Materials Science, Volume 51 is July 2021. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.


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