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In situ tuning of crystallization pathways by electron beam irradiation and heating in amorphous bismuth ferrite films

机译:通过电子束辐照和无定形铋铁氧体薄膜加热的结晶途径的原位调整

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摘要

The sculpting of crystalline materials from amorphous films by electron beam irradiation in transmission electron microscopy (TEM) offers an effective way for fabrication of nanostructure and devices. However, the synthesis of multifunctional complex oxide and related composites for possible device application is difficult to achieve. Here, we show that the crystallization pathways of amorphous bismuth ferrite films could be tuned by controlled electron beam irradiation and in situ heating in TEM. The results show that Bi segregates from amorphous films and then aggregates into crystalline nanoparticles (the particle size can be tuned by electron dose rates) under electron beam irradiation below 100 degrees C, while Bi2Fe4O9 nanocrystals are observed at boundary areas between quasi-liquid Bi nanoparticles at 300 degrees C due to the cooperative effect of electron beam irradiation and thermal heating. Moreover, the Bi/Bi2Fe4O9 metal/semiconductor solid state heterostructure with nearly atomically sharp interfaces emerges when cooling down to room temperature. This finding expands the variety of nanostructures synthesized by electron bombardment and offers a new way to fabricate complex architectures and possible functional devices at the nanometer scale with direct in situ TEM observation and monitoring.
机译:通过电子束照射在透射电子显微镜(TEM)中通过电子束照射的结晶材料的雕刻提供了一种用于制造纳米结构和装置的有效方法。然而,难以实现用于可能的装置应用的多官能复合氧化物和相关复合材料的合成。这里,我们表明,可以通过控制的电子束照射和在TEM中的原位加热来调谐非晶铋铁氧体膜的结晶途径。结果表明,从非晶膜中的双偏析,然后聚集成结晶纳米颗粒(粒度可以通过电子剂量率调节)在低于100℃的电子束照射下,而在准液体Bi纳米粒子之间的边界区域处观察到Bi2Fe 4 O 3纳米晶体由于电子束照射和热加热的协同效果,在300度C.此外,具有近原子尖锐接口BI / Bi2Fe4O9金属/半导体固态异质结构冷却到室温时出现。该发现扩展了电子轰击合成的各种纳米结构,并提供了一种新的制造复杂架构和纳米级的可能功能装置,直接原位TEM观察和监测。

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  • 来源
    《RSC Advances》 |2018年第42期|共7页
  • 作者单位

    Chinese Acad Sci Beijing Inst Nanoenergy &

    Nanosyst Beijing 100083 Peoples R China;

    Chinese Acad Sci Beijing Inst Nanoenergy &

    Nanosyst Beijing 100083 Peoples R China;

    Chinese Acad Sci Beijing Inst Nanoenergy &

    Nanosyst Beijing 100083 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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