纤锌矿晶体结构
材料科学
机制(生物学)
纳米技术
半导体
凝聚态物理
光电子学
化学物理
化学
物理
锌
冶金
量子力学
作者
Cheng‐Wei Lee,Keisuke Yazawa,Andriy Zakutayev,Geoff L. Brennecka,Prashun Gorai
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2024-05-17
卷期号:10 (20)
被引量:15
标识
DOI:10.1126/sciadv.adl0848
摘要
Wurtzite-type ferroelectrics have drawn increasing attention due to the promise of better performance and integration than traditional oxide ferroelectrics with semiconductors such as Si, SiC, and III-V compounds. However, wurtzite-type ferroelectrics generally require enormous electric fields, approaching breakdown, to reverse their polarization. The underlying switching mechanism(s), especially for multinary compounds and alloys, remains elusive. Here, we examine the switching behaviors in Al 1− x Sc x N alloys and wurtzite-type multinary candidate compounds we recently computationally identified. We find that switching in these tetrahedrally coordinated materials proceeds via a variety of nonpolar intermediate structures and that switching barriers are dominated by the more-electronegative cations. For Al 1− x Sc x N alloys, we find that the switching pathway changes from a collective mechanism to a lower-barrier mechanism enabled by inversion of individual tetrahedra with increased Sc composition. Our findings provide insights for future engineering and realization of wurtzite-type materials and open a door to understanding domain motion.
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