材料科学
铁电性
挠曲电
凝聚态物理
极化(电化学)
化学物理
空位缺陷
退火(玻璃)
电迁移
肖特基势垒
氧气
应变工程
氧化物
磁滞
钛酸钡
纳米技术
肖特基二极管
消散
激发极化
光电子学
晶体缺陷
氧气输送
薄膜
电场
作者
Guoyang Shen,Zhibin Wen,Zhiguo Wang,Longlong Shu
标识
DOI:10.1016/j.jmat.2025.101145
摘要
Strain engineering has emerged as a powerful strategy for tailoring the ferroelectric properties and interfacial charge transport behaviors in complex oxide heterostructures. However, the underlying coupling mechanisms between strain-induced polarization reversal and defect-mediated barrier modulation remain in-depth understanding. In this study, controllable strain gradients are introduced through the use of intermediate layers to simultaneously manipulate the polarization orientation of BaTiO 3 thin films and modulate interfacial barrier properties. We systematically investigate the interplay among strain states, polarization behavior, and oxygen vacancy dynamics. Opposing strain states induce distinct polarization orientations in BaTiO 3 , as confirmed by phase reversal and local hysteresis loops. Vacuum annealing is employed to tune the overall oxygen vacancy concentration, while flexoelectric field induced by strain gradient governs the migration and spatial distribution of vacancies. Compressive and tensile strains respectively drive oxygen vacancy accumulation near the surface or at the bottom interface, thereby modulating the Schottky barrier height and associated rectifying behavior. These results reveal a synergistic mechanism whereby flexoelectric polarization and strain-driven redistribution of oxygen vacancy cooperatively regulate charge transport in ferroelectric heterostructures. • Epitaxial strain via SRO/LBSO interlayers enables tunable polarization and charge transport in BaTiO 3 . • Flexoelectric polarization with oxygen-vacancy dynamics modulates Schottky barriers and drives vacancy migration. • Vacuum annealing redistributes oxygen vacancies, reducing internal barriers and lowering the reverse conduction threshold. • Strain–polarization–transport coupling enables improved multistate memory and adaptive ferroelectric performance.
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