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超越外延生长:离子注入作为轨道工程的一种工具

Beyond Epitaxy: Ion Implantation as a Tool for Orbital Engineering.

作者信息

Herklotz Andreas, Petrie Jonathan R, Ward Thomas Z

机构信息

Institute for Physics, Martin-Luther-University Halle-Wittenberg, 06120 Halle, Germany.

Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37830, United States.

出版信息

ACS Appl Electron Mater. 2025 Jul 29;7(16):7580-7584. doi: 10.1021/acsaelm.5c00815. eCollection 2025 Aug 26.

Abstract

Manipulating electronic orbital states in quantum materials provides a powerful means of controlling their physical properties and technological functionality. Here, we demonstrate that orbital populations in strongly correlated oxide thin films can be continuously and reversibly tuned through postsynthesis He ion implantation. Using LaNiO as a model system, we show that the orbital preference can be systematically adjusted from favoring in-plane occupation toward out-of-plane states through precise control of ion fluence. Unlike conventional heteroepitaxial approaches that lock in orbital configurations during growth, this strain-doping technique enables continuous orbital tuning and the selective modification of specific film regions after device fabrication. We demonstrate the practical impact of this control by achieving a 7-fold enhancement in oxygen reduction reaction catalysis. This work establishes ion implantation as a powerful approach for orbital engineering that complements existing synthesis-based strategies while offering unique advantages for both basic research and device development.

摘要

在量子材料中操控电子轨道状态为控制其物理性质和技术功能提供了一种强大手段。在此,我们证明,通过合成后氦离子注入,强关联氧化物薄膜中的轨道占据情况可被连续且可逆地调节。以LaNiO作为模型体系,我们表明,通过精确控制离子注量,轨道偏好可从有利于面内占据系统地调整为有利于面外状态。与在生长过程中锁定轨道构型的传统异质外延方法不同,这种应变掺杂技术能够在器件制造后对特定薄膜区域进行连续的轨道调节和选择性改性。我们通过实现氧还原反应催化活性提高7倍来证明这种控制的实际影响。这项工作确立了离子注入作为一种强大的轨道工程方法,它补充了现有的基于合成的策略,同时为基础研究和器件开发提供了独特优势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/74ad/12392450/29d822f96ad8/el5c00815_0001.jpg

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