Güniat Lucas, Caroff Philippe, Fontcuberta I Morral Anna
Laboratory of Semiconductor Materials, Institute of Materials , École Polytechnique Fédérale de Lausanne , 1015 Lausanne , Switzerland.
Microsoft Quantum Lab Delft , Delft University of Technology , 2600 GA Delft , The Netherlands.
Chem Rev. 2019 Aug 14;119(15):8958-8971. doi: 10.1021/acs.chemrev.8b00649. Epub 2019 Apr 18.
Nanowires are filamentary crystals with a tailored diameter that can be obtained using a plethora of different synthesis techniques. In this review, we focus on the vapor phase, highlighting the most influential achievements along with a historical perspective. Starting with the discovery of VLS, we feature the variety of structures and materials that can be synthesized in the nanowire form. We then move on to establish distinct features such as the three-dimensional heterostructure/doping design and polytypism. We summarize the status quo of the growth mechanisms, recently confirmed by in situ electron microscopy experiments and defining common ground between the different synthesis techniques. We then propose a selection of remaining defects, starting from what we know and going toward what is still to be learned. We believe this review will serve as a reference for neophytes but also as an insight for experts in an effort to bring open questions under a new light.
纳米线是具有特定直径的丝状晶体,可通过多种不同的合成技术获得。在本综述中,我们聚焦于气相法,从历史角度突出最具影响力的成果。从VLS的发现开始,我们介绍了可以以纳米线形式合成的各种结构和材料。然后我们转而阐述诸如三维异质结构/掺杂设计和多型性等独特特征。我们总结了生长机制的现状,这最近已通过原位电子显微镜实验得到证实,并确定了不同合成技术之间的共同点。然后,我们从已知的内容出发,提出一系列有待解决的缺陷,进而探讨仍有待了解的方面。我们相信,本综述将为新手提供参考,也能为专家提供见解,以便从新的角度审视悬而未决的问题。