垂直排列纳米复合材料(VAN)形态下ZnO-Ni杂化超材料的形貌和性能调整。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Nirali A Bhatt, Lizabeth Quigley, Shiyu Zhou, Anirutha Gnanasabai, Abhijeet Choudhury, Yizhi Zhang, Jianan Shen, Juanjuan Lu, Aleem Siddiqui, Raktim Sarma, Haiyan Wang
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引用次数: 0

摘要

在过去的几十年里,ZnO薄膜由于其独特的宽带隙特性、压电特性、非线性和等离子体特性而引起了人们的极大兴趣。近年来,人们一直致力于将氧化锌与次级相耦合以增强其功能,例如具有可调谐光学和等离子体特性的Au-ZnO纳米复合薄膜。在这项工作中,Ni的磁性纳米结构以垂直排列的纳米复合材料(VAN)形式加入ZnO薄膜中,以耦合复杂的杂化超材料体系中的磁性和等离子体响应。镍(Ni)由于其铁磁性和等离子体性质而引起人们的兴趣,金(Au)也具有等离子体性质。因此,除了调整微观结构外,还尝试了两种方法,即调整沉积压力和使用ZnO-Au播种层来获得独特的Ni纳米结构。这两种方法共同展示了一系列微观结构,如核壳、纳米盘、纳米杯和纳米立方样形态,这些都是以前没有尝试过的。此外,还有有效的属性调优。具体地说,播种层的厚度引起双曲行为以及表面等离子体共振(SPR)波长的红移。ZnO-Au播种层的加入直接影响其光学性能。此外,无论采用何种方法,薄膜的组成和微观结构都表现出磁性各向异性,这影响了饱和磁化强度和矫顽力。本研究证明了zno基复合杂化超材料在集成光子器件中具有耦合电磁光特性的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Morphology and property tuning in ZnO-Ni hybrid metamaterials in vertically aligned nanocomposite (VAN) form.

ZnO thin films have attracted significant interest in the past decades owing to their unique wide band gap properties, piezoelectric properties, non-linearity and plasmonic properties. Recent efforts have been made in coupling ZnO with secondary phases to enhance its functionalities, such as Au-ZnO nanocomposite thin films with tunable optical and plasmonic properties. In this work, magnetic nanostructures of Ni are incorporated in ZnO thin films in a vertically aligned nanocomposite (VAN) form to couple magnetic and plasmonic response in a complex hybrid metamaterial system. Nickel (Ni) is of interest due to its ferromagnetic and plasmonic properties along with gold (Au) which is also plasmonic. Therefore, two approaches, namely, tuning of the deposition pressure and use of a ZnO-Au seeding layer have been attempted to achieve unique Ni nanostructures in addition to tuning of the microstructure. Together, both approaches demonstrate a range of microstructures such as core-shell, nanodisk, nanocup, and nanocube-like morphologies not previously attempted. Additionally, there is effective tuning of properties. Specifically, the seeding layer thickness causes hyperbolic behavior as well as redshift in the surface plasmon resonance (SPR) wavelength. The addition of the ZnO-Au seeding layer directly influences the optical properties. Plus, regardless of the different approaches, the films demonstrate magnetic anisotropy based on the composition and microstructure of the film which impacted the saturation magnetization and coercivity. This study demonstrates the potential of ZnO-based complex hybrid metamaterials with coupled electro-magneto-optical properties for integrated photonic devices.

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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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