The need for improved functionalities in extreme environments is fuelling interest in high-entropy ceramics(1-3). Except for the computational discovery of high-entropy carbides, performed with the entropy-forming-ability descriptor(4), most innovation has been slowly driven by experimental means(1-3). Hence, advancement in the field needs more theoretical contributions. Here we introduce disordered enthalpy-entropy descriptor (DEED), a descriptor that captures the balance between entropy gains and enthalpy costs, allowing the correct classification of functional synthesizability of multicomponent ceramics, regardless of chemistry and structure. To make our calculations possible, we have developed a convolutional algorithm that drastically reduces computational resources. Moreover, DEED guides the experimental discovery of new single-phase high-entropy carbonitrides and borides. This work, integrated into the AFLOW computational ecosystem, provides an array of potential new candidates, ripe for experimental discoveries.
Disordered enthalpy-entropy descriptor for high-entropy ceramics discovery.
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作者:Divilov Simon, Eckert Hagen, Hicks David, Oses Corey, Toher Cormac, Friedrich Rico, Esters Marco, Mehl Michael J, Zettel Adam C, Lederer Yoav, Zurek Eva, Maria Jon-Paul, Brenner Donald W, Campilongo Xiomara, FilipoviÄ Suzana, Fahrenholtz William G, Ryan Caillin J, DeSalle Christopher M, Crealese Ryan J, Wolfe Douglas E, Calzolari Arrigo, Curtarolo Stefano
| 期刊: | Nature | 影响因子: | 48.500 |
| 时间: | 2024 | 起止号: | 2024 Jan;625(7993):66-73 |
| doi: | 10.1038/s41586-023-06786-y | ||
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