材料科学
铁电性
极化(电化学)
凝聚态物理
动力学(音乐)
拉伤
激发极化
磁滞
减刑
光电子学
光学
作者
Xiangyu Zheng,Charles Paillard,Dawei Wang,Peng Chen,Hong Jian Zhao,Yu Xie,Laurent Bellaiche
摘要
While scandium-doped aluminum nitride (AlScN) exhibits robust ferroelectricity and excellent thermal stability, its utility is limited by an exceptionally high coercive field (E_{c}) for polarization switching. Unraveling the atomistic switching dynamics is therefore critical for tailoring E_{c}. Here, we combine density functional theory and machine-learning molecular dynamics to elucidate the polarization switching mechanisms in AlScN over various Sc concentrations and applied electric fields. We find that excessive lattice strain strictly prohibits collective polarization switching, but the preexisting domain walls relieve strain and lead to a distinct switching dynamics-dictating a field-dependent switching mechanism. At low electric fields, switching occurs via gradual domain-wall propagation consistent with the Kolmogorov-Avrami-Ishibashi model. In contrast, high fields stimulate additional nucleation, driving a rapid, homogeneous reversal process described by the simultaneous nonlinear nucleation and growth model. These findings highlight the critical role of domain-wall dynamics and suggest domain engineering as a viable strategy to tailor coercive fields in AlScN and related ferroelectrics.
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