通往动力学固态化学之路:活化能控制的 LiSc(NCN)2 逐步合成及晶体结构

IF 3.2 3区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR Journal of Solid State Chemistry Pub Date : 2024-08-19 DOI:10.1016/j.jssc.2024.124970
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引用次数: 0

摘要

合理设计新材料是现代固态化学的一个重要目标,通过采用不同的合成策略来改变反应的能量方面,从而有效控制反应的方向。在这一背景下,在基于密度函数的焓图的帮助下,我们开发出了一种固态氰酰胺代谢方法,可以对其活化能曲线进行合成扫描,从而获得更温和的反应条件,并防止潜在的产物分解。这种方法主要通过中间体 LixNa1-xSc(NCN)2 的存在以及随后 Na+ 与 Li+ 离子的逐步交换,通过 Na2NCN、SCl3 和 LiCl 之间的固态元合成制备出三元氰酰胺 LiSc(NCN)2。对 NCN2-基团周围配位环境的结构分析表明,随着 Na+ 离子逐渐被 Li+ 离子取代,该单元的畸变发生了松弛,氰酰胺的取向也发生了反转,因此非常有利于目标化合物的形成。
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On the path to kinetic solid-state chemistry: Activation energy-controlled stepwise synthesis and crystal structure of LiSc(NCN)2

Rationally designing new materials is a crucial objective in modern solid-state chemistry, employing different synthetic strategies to vary a reaction's energetic aspects and, hence, effectively control its direction. In that context, and aided by density-functional-based enthalpy diagrams, we have developed a solid-state cyanamide metathetic method allowing to synthetically scan its activation energy profile, thus yielding milder reaction conditions and preventing potential product decomposition. This approach has led to the preparation of the ternary cyanamide LiSc(NCN)2 via solid-state metathesis between Na2NCN, ScCl3 and LiCl, essentially by the existence of an intermediate, LixNa1–xSc(NCN)2, and the subsequent stepwise exchange of Na+ with Li+ ions. Both LiSc(NCN)2 and the solid solution crystallize in an orthorhombic crystal structure with Pbcn symmetry, similar to the rest of the LiM(NCN)2 cyanamide family with M = Al, In, Yb and Y. Structural analysis of the coordination environment around the NCN2− group reveals a relaxation in the distortion of this unit and also an inversion of the cyanamide orientation as Na+ ions are progressively replaced with Li+, thus making the formation of the targeted compound highly favorable.

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来源期刊
Journal of Solid State Chemistry
Journal of Solid State Chemistry 化学-无机化学与核化学
CiteScore
6.00
自引率
9.10%
发文量
848
审稿时长
25 days
期刊介绍: Covering major developments in the field of solid state chemistry and related areas such as ceramics and amorphous materials, the Journal of Solid State Chemistry features studies of chemical, structural, thermodynamic, electronic, magnetic, and optical properties and processes in solids.
期刊最新文献
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