Untangling the role of the carbon matrix in the magnetic coupling of Ni@C nanoparticles with mixed FCC/HCP crystal structures

IF 5.1 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Mona Fadel, F. Julián Martín-Jimeno, M. P. Fernández-García, Fabián Suárez-García, Juan Ignacio Paredes, J. H. Belo, J. P. Araújo, Alaa Adawy, David Martínez-Blanco, Pablo Álvarez-Alonso, Jesús A. Blanco and Pedro Gorria
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Abstract

Nowadays, Ni@C nanostructured materials are attracting a great deal of attention due to their multiple catalytic or magnetic functionalities. In this article we report on the investigation of the correlation between the microstructure and magnetic properties of Ni nanoparticles embedded in a carbon matrix. The samples were obtained following a two-step procedure that ensures protection against nanoparticle oxidation, and was carried out in the following way: (i) the synthesis of a nickel-imidazole-based metal–organic framework (MOF) by a simple method in an aqueous medium at moderate temperature (95 °C); and (ii) carbonization of the MOF at different temperatures between 400 and 600 °C to obtain a carbon-supported hybrid material, containing Ni nanoparticles with an “artichoke-like” morphology, where a Ni-FCC core is surrounded by “bracts” of Ni-HCP and Ni3C. The average size of the nanoparticle slightly changes from 7 to 10 nm as the carbonization temperature is increased, but the Ni-FCC core diameter ranges from 3 to around 6 nm. We show how the information obtained on the evolution of the magnetic behaviour with carbonization temperature, using X-ray diffraction and electron microscopy, complements each other by providing consistent structural and magnetic characteristics of the investigated Ni@C nanoparticles. In fact, this joint analysis allows us to explain the formation and transformation of different Ni-based crystalline phases along the synthesis process, including Ni3C and Ni with both hexagonal and cubic crystalline structures. The amount of conventional Ni-FCC is below 10 wt% for the sample treated at 400 °C and it can reach up to 50 wt% for that treated at 600 °C. Finally, based on our current findings we propose an explanation for understanding the magnetic properties of Ni@C, in which the Ni-FCC core spins mainly govern the magnetic coupling of the whole system.

Abstract Image

解开碳基体在Ni@C纳米颗粒与混合FCC/HCP晶体结构的磁耦合中的作用
目前,Ni@C纳米结构材料由于其多种催化或磁性功能而引起了人们的广泛关注。本文报道了嵌入碳基体的Ni纳米颗粒的微观结构与磁性能之间的关系。样品是通过两步程序获得的,以确保防止纳米颗粒氧化,并以以下方式进行:(i)通过简单的方法在中等温度(95°C)的水介质中合成镍-咪唑基金属有机骨架(MOF);(ii)在400 ~ 600℃的不同温度下对MOF进行碳化处理,得到碳负载的杂化材料,该材料含有具有“洋蓟状”形貌的Ni纳米颗粒,其中Ni- fcc核心被Ni- hcp和Ni3C的“苞片”包围。随着炭化温度的升高,纳米颗粒的平均尺寸在7 ~ 10 nm之间略有变化,但Ni-FCC芯直径在3 ~ 6 nm左右。我们通过x射线衍射和电子显微镜展示了如何通过提供所研究的Ni@C纳米颗粒的一致结构和磁性特征来相互补充碳化温度下磁性行为演变的信息。事实上,这种联合分析可以让我们解释在合成过程中不同镍基晶相的形成和转变,包括Ni3C和Ni,同时具有六方和立方晶体结构。在400°C下处理的样品中,常规Ni-FCC的量低于10 wt%,而在600°C下处理的样品中,它可以达到50 wt%。最后,基于我们目前的发现,我们提出了一种解释,以理解Ni@C的磁性,其中Ni-FCC核心自旋主要控制整个系统的磁耦合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Materials Chemistry C
Journal of Materials Chemistry C MATERIALS SCIENCE, MULTIDISCIPLINARY-PHYSICS, APPLIED
CiteScore
10.80
自引率
6.20%
发文量
1468
期刊介绍: The Journal of Materials Chemistry is divided into three distinct sections, A, B, and C, each catering to specific applications of the materials under study: Journal of Materials Chemistry A focuses primarily on materials intended for applications in energy and sustainability. Journal of Materials Chemistry B specializes in materials designed for applications in biology and medicine. Journal of Materials Chemistry C is dedicated to materials suitable for applications in optical, magnetic, and electronic devices. Example topic areas within the scope of Journal of Materials Chemistry C are listed below. This list is neither exhaustive nor exclusive. Bioelectronics Conductors Detectors Dielectrics Displays Ferroelectrics Lasers LEDs Lighting Liquid crystals Memory Metamaterials Multiferroics Photonics Photovoltaics Semiconductors Sensors Single molecule conductors Spintronics Superconductors Thermoelectrics Topological insulators Transistors
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