Nanoscale core-shell structure and recrystallization of swift heavy ion tracks in SrTiO3

IF 5.8 3区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Nanoscale Pub Date : 2024-07-01 DOI:10.1039/d4nr01974a
Ashish Kumar Gupta, Eva Zarkadoula, Maxim Ziatdinov, Sergei V. Kalinin, Vikas Reddy Paduri, Jordan A Hachtel, Yanwen Zhang, Christina Trautmann, William J. Weber, Ritesh Sachan
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Abstract

It is widely accepted that the interaction of swift heavy ions with many complex oxides is predominantly governed by the electronic energy loss that gives rise to nanoscale amorphous ion tracks along the penetration direction. The question of how electronic excitation and electron-phonon coupling affect the atomic system through defect production, recrystallization, and strain effects has not yet been fully clarified. To advance the knowledge of the atomic structure of ion tracks, we irradiated single crystalline SrTiO3 with 629 MeV Xe ions and performed comprehensive electron microscopy investigations complemented by molecular dynamics simulations. This study shows discontinuous ion-track formation along the ion penetration path, comprising an amorphous core and a surrounding a few monolayer thick shell of strained/defective crystalline SrTiO3. Using machine-learning-aided analysis of atomic-scale images, we demonstrate the presence of 4-8% strain in the disordered region interfacing with the amorphous core in the initially formed ion tracks. Under constant exposure of the electron beam during imaging, the amorphous part of the ion tracks readily recrystallizes radially inwards from the crystalline-amorphous interface under the constant electron-beam irradiation during the imaging. Cation strain in the amorphous region is observed to be significantly recovered, while the oxygen sublattice remains strained even under the electron irradiation due to the present oxygen vacancies. The molecular dynamics simulations support this observation and suggest that local transient heating and annealing facilitate recrystallization process of the amorphous phase and drive Sr and Ti sublattices to rearrange. In contrast, the annealing of O atoms is difficult, thus leaving a remnant of oxygen vacancies and strain even after recrystallization. This work provides insights for creating and transforming novel interfaces and nanostructures for future functional applications.
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SrTiO3 中的纳米级核壳结构和快速重离子轨道再结晶
人们普遍认为,快速重离子与许多复杂氧化物的相互作用主要受电子能量损耗的支配,电子能量损耗会沿穿透方向产生纳米级非晶离子轨道。至于电子激发和电子-声子耦合如何通过产生缺陷、再结晶和应变效应影响原子系统,这一问题尚未完全阐明。为了增进对离子轨道原子结构的了解,我们用 629 MeV Xe 离子辐照了单晶 SrTiO3,并进行了全面的电子显微镜研究,同时辅以分子动力学模拟。这项研究表明,沿着离子穿透路径形成的离子轨道是不连续的,由无定形核心和周围几单层厚的应变/缺陷晶体 SrTiO3 壳组成。通过对原子尺度图像进行机器学习辅助分析,我们证明在最初形成的离子轨迹中,与无定形内核相接的无序区域存在 4%-8% 的应变。在成像过程中,在电子束的持续照射下,离子轨道的无定形部分很容易从晶体-无定形界面向内径向再结晶。据观察,无定形区域的阳离子应变明显恢复,而氧亚晶格由于存在氧空位,即使在电子辐照下仍保持应变。分子动力学模拟支持这一观察结果,并表明局部瞬态加热和退火促进了无定形相的再结晶过程,并促使 Sr 和 Ti 亚晶格重新排列。与此相反,O 原子的退火却很困难,因此即使在再结晶后也会残留氧空位和应变。这项研究为创建和改造新型界面和纳米结构以实现未来的功能性应用提供了启示。
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来源期刊
Nanoscale
Nanoscale CHEMISTRY, MULTIDISCIPLINARY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
12.10
自引率
3.00%
发文量
1628
审稿时长
1.6 months
期刊介绍: Nanoscale is a high-impact international journal, publishing high-quality research across nanoscience and nanotechnology. Nanoscale publishes a full mix of research articles on experimental and theoretical work, including reviews, communications, and full papers.Highly interdisciplinary, this journal appeals to scientists, researchers and professionals interested in nanoscience and nanotechnology, quantum materials and quantum technology, including the areas of physics, chemistry, biology, medicine, materials, energy/environment, information technology, detection science, healthcare and drug discovery, and electronics.
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