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具有可调谐等离子体和磁性的尖晶石铁氧体的掺杂独立功函数和稳定带隙

Doping Independent Work Function and Stable Band Gap of Spinel Ferrites with Tunable Plasmonic and Magnetic Properties.

作者信息

Bhalla Nikhil, Taneja Shilpa, Thakur Preeti, Sharma Preetam Kumar, Mariotti Davide, Maddi Chiranjeevi, Ivanova Oxana, Petrov Dmitry, Sukhachev Alexander, Edelman Irina S, Thakur Atul

机构信息

Nanotechnology and Integrated Bioengineering Centre (NIBEC), School of Engineering, Ulster University, Shore Road, Jordanstown, BT37 0QB, Northern Ireland, United Kingdom.

Healthcare Technology Hub, Ulster University, Shore Road, Jordanstown, BT37 0QB, Northern Ireland, United Kingdom.

出版信息

Nano Lett. 2021 Nov 24;21(22):9780-9788. doi: 10.1021/acs.nanolett.1c03767. Epub 2021 Nov 4.

Abstract

Tuning optical or magnetic properties of nanoparticles, by addition of impurities, for specific applications is usually achieved at the cost of band gap and work function reduction. Additionally, conventional strategies to develop nanoparticles with a large band gap also encounter problems of phase separation and poor crystallinity at high alloying degree. Addressing the aforementioned trade-offs, here we report Ni-Zn nanoferrites with energy band gap () of ≈3.20 eV and a work function of ≈5.88 eV. While changes in the magnetoplasmonic properties of the Ni-Zn ferrite were successfully achieved with the incorporation of bismuth ions at different concentrations, there was no alteration of the band gap and work function in the developed Ni-Zn ferrite. This suggests that with the addition of minute impurities to ferrites, independent of their changes in the band gap and work function, one can tune their magnetic and optical properties, which is desired in a wide range of applications such as nanobiosensing, nanoparticle based catalysis, and renewable energy generation using nanotechnology.

摘要

通过添加杂质来调整纳米颗粒的光学或磁性以用于特定应用,通常是以降低带隙和功函数为代价的。此外,开发具有大带隙纳米颗粒的传统策略在高合金化程度下也会遇到相分离和结晶性差的问题。为了解决上述权衡问题,我们在此报告了能带隙()约为3.20 eV且功函数约为5.88 eV的镍锌纳米铁氧体。虽然通过掺入不同浓度的铋离子成功实现了镍锌铁氧体磁等离子体性质的变化,但所开发的镍锌铁氧体的带隙和功函数没有改变。这表明,在铁氧体中添加微量杂质时,无论其带隙和功函数如何变化,都可以调整其磁性和光学性质,这在诸如纳米生物传感、基于纳米颗粒的催化以及利用纳米技术的可再生能源发电等广泛应用中是非常需要的。

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