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The crystal chemistry of Fe-bearing sphalerites: An infrared spectroscopic study

机译:含铁闪锌矿的晶体化学:红外光谱研究

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摘要

Iron substitution into sphalerite, ZnS, has been studied systematically by infrared spectroscopy. A range of natural and synthetic compositions, (Zn1–xFex)S, 0 x 0.24, were examined. The IR spectrum of pure ZnS contains a single strong absorption band at 320 cm–1. With addition of FeS, the spectra become broader and shoulders appear. For compositions 9 mol% FeS, a splitting of the main peak occurs, and the spectra show two absorption maxima at approximately 300 and 315 cm–1, respectively. The observation of such extra features does not correspond to the usual behavior observed in other ternary mixed crystals, where either one-, two-, or mixed-mode behavior is observed. The spectra can be deconvoluted into up to three peaks, main Peaks A and B at around 300 and 315 cm–1, respectively, and a shoulder at around 330 cm–1 (Peak C). The positions and area of the peaks do not change significantly with increasing Fe content. The peak at 315 cm–1 is the main absorption peak of the host ZnS structure, and the peak at 300 cm–1 is an impurity induced mode. An effective linewidth parameter corr was determined by autocorrelation analysis for each spectrum, but there are no obvious trends in the values of corr that can be interpreted in terms of an inhomogeneous distribution of Fe within the sphalerite structure.
机译:已经通过红外光谱系统地研究了将铁代入闪锌矿ZnS中的方法 。检查了一系列天然和合成成分, (Zn 1-x Fe x )S,0 x 0.24。纯ZnS的IR光谱 在320 cm –1 处包含一个强吸收带。添加FeS后,光谱变得更宽 并出现了肩峰。对于9 m​​ol%FeS的成分,主峰发生分裂 ,光谱显示在约300和315 cm –1 最大值。 观察到的这些额外特征与 在其他三元混合晶体 中观察到的通常行为不符,其中,观察到两种模式或混合模式的行为。 光谱可以反卷积为最多三个峰,分别是主 在300和315 cm处的峰A和B –1 分别是 和大约330 cm –1 处的肩膀(峰值C)。随着铁含量的增加,峰的位置 和峰面积没有明显变化。 315 cm –1 处的峰是宿主ZnS结构的主要吸收 峰,而300 cm -1 处的峰是一种杂质诱导模式。通过自相关分析确定了每个光谱的有效线宽参数 corr ,但是 corr <的值没有明显的趋势。 / sub>可以根据闪锌矿结构中 Fe的不均匀分布来解释。

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  • 来源
    《American Mineralogist》 |2008年第4期|591-597|共7页
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    Department of Mineralogy, South Australian Museum, North Terrace, Adelaide, South Australia 5000, Australia|School of Chemistry, Physics and Earth Sciences, The Flinders University of South Australia, GPO Box 2100 Adelaide, South Australia 5000, Australia;

    Dipartimento di Scienze della Terra, Università di Pavia, Via Ferrata 1, 27100 Pavia, Italy;

    Department of Mineralogy, South Australian Museum, North Terrace, Adelaide, South Australia 5000, Australia;

    Department of Mineralogy, South Australian Museum, North Terrace, Adelaide, South Australia 5000, Australia;

    Department of Earth Sciences, University of Cambridge, Downing Street, Cambridge CB2 3EQ, U.K.;

    Department of Earth Sciences, University of Cambridge, Downing Street, Cambridge CB2 3EQ, U.K.;

    Research School of Chemistry, Australian National University, Canberra, ACT, 0200, Australia;

    Research School of Chemistry, Australian National University, Canberra, ACT, 0200, Australia;

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