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High-Pressure Phase Transitions of MorphologicallyDistinct Zn2SnO4 Nanostructures

机译:高压形态相变独特的Zn2SnO4纳米结构

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摘要

Many aspects of nanostructured materials at high pressures are still unexplored. We present here, high-pressure structural behavior of two Zn2SnO4 nanomaterials with inverse spinel type, one a particle with size of ∼7 nm [zero dimensional (0-D)] and the other with a chain-like [one dimensional (1-D)] morphology. We performed in situ micro-Raman and synchrotron X-ray diffraction measurements and observed that the cation disordering of the 0-D nanoparticle is preserved up to ∼40 GPa, suppressing the reported martensitic phase transformation. On the other hand, an irreversible phase transition is observed from the 1-D nanomaterial into a new and dense high-pressure orthorhombic CaFe2O4-type structure at ∼40 GPa. The pressure-treated 0-D and 1-D nanomaterials have distinct diffuse reflectance and emission properties. In particular, a heterojunction between the inverse spinel and quenchable orthorhombic phases allows the use of 1-D Zn2SnO4 nanomaterials as efficient photocatalysts as shown by the degradation of the textile pollutantmethylene blue.
机译:高压下纳米结构材料的许多方面仍未探索。我们在这里介绍了两种尖晶石型Zn2SnO4纳米材料的高压结构行为,一种纳米材料的粒径约为7 nm [零维(0-D)],另一种呈链状[一维(1- D)]形态。我们进行了原位微拉曼和同步加速器X射线衍射测量,并观察到0-D纳米粒子的阳离子无序可保留至约40 GPa,从而抑制了报道的马氏体相变。另一方面,在约40 GPa的压力下,从1-D纳米材料观察到不可逆的相变,形成新的致密高压正交晶体CaFe2O4型结构。经过压力处理的0-D和1-D纳米材料具有明显的漫反射和发射特性。尤其是,尖晶石反相与可淬斜方晶相之间的异质结允许将一维Zn2SnO4纳米材料用作有效的光催化剂,如纺织品污染物的降解所示。亚甲蓝。

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