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BiFeO纳米颗粒的晶体生长机制

Crystal Growth Mechanisms of BiFeO Nanoparticles.

作者信息

Bai Xiaofei, Bugnet Matthieu, Frontera Carlos, Gemeiner Pascale, Guillot Jérôme, Lenoble Damien, Infante Ingrid C

机构信息

Institut des Nanotechnologies de Lyon, CNRS UMR5270 ECL INSA UCBL CPE , 69621 Villeurbanne Cedex , France.

Laboratoire Structures, Propriétés et Modélisation des Solides (SPMS), CentraleSupélec, CNRS-UMR8580, Université Paris-Saclay , Gif-sur-Yvette , France.

出版信息

Inorg Chem. 2019 Sep 3;58(17):11364-11371. doi: 10.1021/acs.inorgchem.9b00461. Epub 2019 Aug 16.

Abstract

A wet-chemical synthesis process was designed to obtain reproducible single-phase multiferroic BiFeO nanoparticles. The phase purity, single crystallinity, and size of the nanoparticles are confirmed through the analysis of X-ray diffraction patterns, Raman spectroscopy, and high resolution transmission electron microscopy experiments. Crystal nucleation happens within the amorphous-rich area in multiple seeds, leading to the formation of single crystalline nanoparticles with no preferential faceting. Crystallization mechanisms of BiFeO nanoparticles were investigated following the Kissinger-Akahira-Sunose approach, indicating that two crystallization steps are responsible of the complete BiFeO nanoparticle formation. The first crystallization step involves a maximum of 70% of the final crystal volume, arising from nanocrystal nucleation and growth. The second step occurs above this threshold crystal volume fraction, and it is related to the nanocrystallite coalescence process. Analysis of the thermodynamic process of the crystallization of BiFeO nanoparticles following Ostwald rules suggests a relatively low energy barrier for crystal nucleation, highlighting that phase pure, single crystalline BiFeO nanoparticles are obtained using the present optimized wet-chemical synthesis process, with temperatures as low as 450 °C.

摘要

设计了一种湿化学合成工艺来制备可重现的单相多铁性BiFeO纳米颗粒。通过对X射线衍射图谱、拉曼光谱和高分辨率透射电子显微镜实验的分析,证实了纳米颗粒的相纯度、单晶性和尺寸。晶体成核发生在多个晶种中富含非晶的区域内,导致形成无择优晶面的单晶纳米颗粒。采用基辛格-赤平-ose方法研究了BiFeO纳米颗粒的结晶机制,表明两个结晶步骤促成了完整的BiFeO纳米颗粒的形成。第一步结晶涉及最终晶体体积的70%,这源于纳米晶体的成核和生长。第二步发生在这个阈值晶体体积分数之上,它与纳米微晶聚结过程有关。根据奥斯特瓦尔德规则对BiFeO纳米颗粒结晶的热力学过程进行分析表明,晶体成核的能垒相对较低,这突出表明使用当前优化的湿化学合成工艺,在低至450°C的温度下可获得相纯的单晶BiFeO纳米颗粒。

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