马达加斯加蓝色碧玺的特征及颜色来源探讨

IF 1.5 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
Ming Li
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引用次数: 1

摘要

本研究采用x射线衍射、傅里叶变换红外光谱、紫外-可见光谱和x射线光电子能谱对电气石的颜色来源进行了光谱研究。研究工作重点是对过渡金属原子的价态和配位数进行分析,以便更好地了解过渡金属阳离子对颜色来源的影响。结果表明,晶体呈现蓝色是由于红色光谱中725 nm处的强吸收引起的,产生对称且宽的吸收带。725 nm处的吸收带是由Y位的Fe2+和Z位的Fe3+之间的电荷转移引起的。晶体中的其他离子在可见光谱范围内不产生吸收线。除位置外,还对其价态和配位数进行了分析,揭示了电气石的颜色变化和来源。最重要的是,这种光谱分析方法使难以揭示的电荷转移的显色机理得以清晰地揭示,这将为研究宝石的结构-性能关系以及揭示美丽颜色的成因提供一种可用的材料和化学方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of Blue Tourmaline from Madagascar for Exploring Its Color Origin
In the research, spectroscopic studies of tourmaline for color origin were performed by X-ray diffraction, Fourier transform infrared spectroscopy, ultraviolet-visible spectroscopy, and X-ray photoelectron spectroscopy. The research work emphasized the analysis of transition metal atoms, including their valence state and coordination number, in order to better understand the effect of transition metal cations on the color origin. The results showed that the blue color of the crystal is caused by the strong absorption at 725 nm in the red spectrum, which generates a symmetrical and wide absorption band. The absorption band at 725 nm is caused by charge transfer between Fe2+ at the Y site and Fe3+ at the Z site. Other ions in the crystal did not generate absorption lines in the visible spectral range. Besides position, its valence state and coordination number were clarified to reveal color variation and the origin of tourmaline. Most importantly, this spectroscopic analysis method makes the coloration mechanism of charge transfer that is difficult to be uncovered to be clearly revealed, which will provide an available material and chemical method to investigate the structure-property relationship for gems as well as reveal the genesis of beautiful colors.
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来源期刊
Advances in Condensed Matter Physics
Advances in Condensed Matter Physics PHYSICS, CONDENSED MATTER-
CiteScore
2.30
自引率
0.00%
发文量
33
审稿时长
6-12 weeks
期刊介绍: Advances in Condensed Matter Physics publishes articles on the experimental and theoretical study of the physics of materials in solid, liquid, amorphous, and exotic states. Papers consider the quantum, classical, and statistical mechanics of materials; their structure, dynamics, and phase transitions; and their magnetic, electronic, thermal, and optical properties. Submission of original research, and focused review articles, is welcomed from researchers from across the entire condensed matter physics community.
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