Synthesis of Flower‐like FeS2 and NiS2 Microspheres Based on Nanoflakes and Nanoparticles: Electronic Structures, Magnetic and Optical Properties

Dong Zhang, Jing Bai, Jiaan Liu, X. Zhou
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Abstract

Flower‐like spherical micron‐sized particles of FeS2 and NiS2 were synthesized using the solvothermal method. The microstructure, phase composition, saturation magnetization and optical characteristics of the synthesized FeS2 and NiS2 were described, and the atomic structure, electronic structure and optical characteristics of the materials are calculated systematically founded upon the first principle of density functional theory. This work shows that the magnetic saturation intensity of FeS2 and NiS2 is respectively 0.36 and 0.02 emu/g. The FeS2 and NiS2 band gaps are separately 0.81 and 2.07 eV, calculated by Tauc’s relation. Through the comparison of optical properties, the maximum absorption coefficient of FeS2 and NiS2 is separately 3.26 × 105 and 3.3 × 105 cm‐1, and the two crystals’ absorption coefficient accordingly drops to zero at 23.8 and 25.8 eV, indicating that the maximum absorption value and energy absorption range of NiS2 are higher than those of FeS2. The reflectivity above 60% ranges from 15.3 to 20.6 eV and 15.2 to 21.5 eV for FeS2 and NiS2, respectively, which indicates that the reflectivity of NiS2 is stronger than that of FeS2.This article is protected by copyright. All rights reserved.
基于纳米片和纳米颗粒的花状FeS2和NiS2微球的合成:电子结构、磁性和光学性质
采用溶剂热法制备了FeS2和NiS2的微米级球状花状颗粒。描述了合成的FeS2和NiS2的微观结构、相组成、饱和磁化强度和光学特性,并基于密度泛函理论的第一原理系统地计算了材料的原子结构、电子结构和光学特性。结果表明,FeS2和NiS2的磁饱和强度分别为0.36和0.02 emu/g。根据Tauc关系计算,FeS2和NiS2的带隙分别为0.81和2.07 eV。通过光学性质的比较,FeS2和NiS2的最大吸收系数分别为3.26 × 105和3.3 × 105 cm‐1,在23.8和25.8 eV时,两种晶体的吸收系数相应降为零,说明NiS2的最大吸收值和能量吸收范围高于FeS2。FeS2和NiS2在60%以上的反射率分别为15.3 ~ 20.6 eV和15.2 ~ 21.5 eV,说明NiS2的反射率强于FeS2。这篇文章受版权保护。版权所有。
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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