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Direct observation of single organic molecules grafted on the surface of a silicon nanowire

机译:直接观察嫁接到硅纳米线表面的单个有机分子

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摘要

Silicon nanowires inspire since decades a great interest for their fundamental scientific importance and their potential in new technologies. When decorated with organic molecules they form hybrid composites with applications in various fields, from sensors to life science. Specifically the diethyl 1-propylphosphonate/Si combination is considered as a promising alternative to the conventional semiconductor n-type doping methods, thanks to its solution-based processing, which is damage-free and intrinsically conformal. For these characteristics, it is a valid doping process for patterned materials and nanostructures such as the nanowires. Our joined experimental and theoretical study provides insights at atomistic level on the molecular activation, grafting and self-assembling mechanisms during the deposition process. For the first time to the best of our knowledge, by using scanning transmission electron microscopy the direct visualization of the single molecules arranged over the Si nanowire surface is reported. The results demonstrate that the molecules undergo to a sequential decomposition and self-assembling mechanism, finally forming a chemical bond with the silicon atoms. The ability to prepare well-defined molecule decorated Si nanowires opens up new opportunities for fundamental studies and nanodevice applications in diverse fields like physics, chemistry, engineering and life sciences.
机译:几十年来,硅纳米线激发了人们的极大兴趣,因为它们具有根本的科学重要性和在新技术中的潜力。当用有机分子修饰时,它们会形成杂化复合材料,其应用范围从传感器到生命科学。特别地,由于其基于溶液的工艺无损伤且本质上是共形的,因此,将1-丙基膦酸二乙酯/ Si的组合视为常规半导体n型掺杂方法的有前途的替代方法。对于这些特性,它是用于图案化材料和纳米结构(例如纳米线)的有效掺杂工艺。我们参与的实验和理论研究在沉积过程中提供了原子活化方面的分子活化,接枝和自组装机制的见解。据我们所知,这是第一次,通过使用扫描透射电子显微镜直接观察了排列在Si纳米线表面的单个分子。结果表明,分子经历顺序分解和自组装机制,最终与硅原子形成化学键。制备定义明确的分子修饰的Si纳米线的能力为基础研究和纳米器件在物理,化学,工程和生命科学等各个领域的应用提供了新的机会。

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