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Morphological and phase stability of zinc blende, amorphous and mixed core-shell ZnS nanoparticles

机译:锌混合物,无定形和混合核壳ZnS纳米颗粒的形态和相位稳定性

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Zinc sulfide (ZnS) nanoparticles are of interest for their luminescent and catalytic properties which are being considered for the next generation of optical, electronic and photovoltaic devices. However, ZnS nanoparticles undergo reversible and irreversible phase transformations under ambient conditions, so a detailed understanding of the nanomorphology is critical in ensuring these desirable properties can be controlled and maintained. Anticipating the structure and transformations in ZnS nanoparticles experimentally is difficult, since selectivity among competing phases, shapes and sizes is intrinsically linked. Presented here are the results of first principle computer simulations and advanced theoretical modelling used to investigate the relationship between size and shape in determining the crystallinity of ZnS nanoparticles. We find that the equilibrium morphology is characterised by {220} facets, irrespective of the size of the particle, but that the presence of different high energy facets introduced kinetically may significantly influence the zinc blende to amorphous ZnS transformation size, as well as the agglomeration behaviour. In addition to this, we model the relationship between transformation size, morphology and the ratio of crystalline core to amorphous shell and show that at small sizes, a core-shell crystalline/amorphous structure is thermodynamically favourable.
机译:硫化锌(Zns)纳米颗粒对于其发光和催化性能引起了人们的关注,这些特性正在考虑下一代光学,电子和光伏设备。但是,ZnS纳米颗粒在环境条件下经历可逆和不可逆的相变,因此对纳米形态的详细理解对于确保可以控制和维护这些理想的特性至关重要。在实验上预测ZnS纳米颗粒中的结构和转换是困难的,因为竞争阶段,形状和大小之间的选择性本质上是链接的。此处介绍的是第一个原理计算机模拟的结果和高级理论建模,用于研究ZnS纳米颗粒结晶度的大小和形状之间的关系。我们发现,平衡形态的特征是{220}方面,无论粒子的大小如何行为。除此之外,我们还建模了转化大小,形态和晶体核与无定形外壳的比率之间的关系,并表明在小尺寸时,核心壳晶体/无定形结构在热力学上是有利的。

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