| Literature DB >> 31879341 |
Youbing Li1,2, Jun Lu3, Mian Li1, Keke Chang1, Xianhu Zha1,4, Yiming Zhang1, Ke Chen1, Per O Å Persson3, Lars Hultman3, Per Eklund3, Shiyu Du1, Joseph S Francisco5, Zhifang Chai1, Zhengren Huang1, Qing Huang6.
Abstract
Tailoring of individual single-atom-thick layers in nanolaminated materials offers atomic-level control over material properties. Nonetheless, multielement alloying in individual atomic layers in nanolaminates is largely unexplored. Here, we report 15 inherently nanolaminated V2(A xSn1-x)C (A = Fe, Co, Ni, Mn, and combinations thereof, with x ∼ 1/3) MAX phases synthesized by an alloy-guided reaction. The simultaneous occupancy of the 4 magnetic elements and Sn in the individual single-atom-thick A layers constitutes high-entropy MAX phase in which multielemental alloying exclusively occurs in the 2-dimensional (2D) A layers. V2(A xSn1-x)C exhibit distinct ferromagnetic behavior that can be compositionally tailored from the multielement A-layer alloying. Density functional theory and phase diagram calculations are performed to understand the structure stability of these MAX phases. This 2D multielemental alloying approach provides a structural design route to discover nanolaminated materials and expand their chemical and physical properties. In fact, the magnetic behavior of these multielemental MAX phases shows strong dependency on the combination of various elements.Entities:
Keywords: MAX phases; high-entropy ceramics; magnetism; multielement alloys
Year: 2019 PMID: 31879341 PMCID: PMC6969549 DOI: 10.1073/pnas.1916256117
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205