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由元素合成具有尖晶石结构的氮化锡(IV),即γ-SnN,并对其在高压下进行拉曼光谱检测。

Synthesis of tin(IV) nitride with spinel structure, -SnN, from the elements and its Raman-spectroscopic examination at high pressures.

作者信息

Zerr Andreas, Miehe Gerhard

机构信息

Laboratoire des Sciences des Procédés et des Matériaux, CNRS UPR 3407, Université Sorbonne Paris Nord, 99 av. J. B. Clement, 93430 Villetaneuse, France.

FB Material- und Geowissenschaften, Technische Universität Darmstadt, Alarich-Weiss-Straße 2, 64287 Darmstadt, Germany.

出版信息

Philos Trans A Math Phys Eng Sci. 2023 Oct 16;381(2258):20220330. doi: 10.1098/rsta.2022.0330. Epub 2023 Aug 28.

Abstract

We report on the synthesis of tin(IV) nitride with spinel structure, -SnN, from the elements at high pressures and temperatures using a laser-heated diamond anvil cell, and on the Rietveld refinement of the product structure. The procedure described here is, in our opinion, the most reliable method of obtaining high-purity nitrides which are thermodynamically stable only at high pressures. Raman spectroscopy and powder X-ray diffraction were used to characterize the synthesis products. Pressure dependences of the Raman-band frequencies of -SnN were measured and used to determine its average mode Grüneisen parameter, 〈〉 = 0.95. Using this value, we estimated the thermal-shock resistance of -SnN to be about half that of -SiN, which, in turn, is moderately surpassed by -SiN, known to be highly thermal-shock resistant. This article is part of the theme issue 'Exploring the length scales, timescales and chemistry of challenging materials (Part 1)'.

摘要

我们报告了利用激光加热金刚石砧盒在高温高压下由元素合成具有尖晶石结构的氮化锡(IV),即β-SnN,并对产物结构进行了Rietveld精修。我们认为,这里描述的方法是获得仅在高压下热力学稳定的高纯度氮化物的最可靠方法。利用拉曼光谱和粉末X射线衍射对合成产物进行了表征。测量了β-SnN的拉曼带频率随压力的变化,并用于确定其平均模式格鲁尼森参数〈γ〉 = 0.95。利用该值,我们估计β-SnN的抗热震性约为β-SiN的一半,而β-SiN又被已知具有高抗热震性的α-SiN适度超越。本文是主题为“探索具有挑战性材料的长度尺度、时间尺度和化学性质(第1部分)”的一部分。

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