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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Plasma-synthesized single-walled carbon nanotubes and their applications
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Plasma-synthesized single-walled carbon nanotubes and their applications

机译:等离子体合成的单壁碳纳米管及其应用

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Plasma-based nanotechnology is a rapidly developing area of research ranging from physics of gaseous and liquid plasmas to material science, surface science and nanofabrication. In our case, nanoscopic plasma processing is performed to grow single-walled carbon nanotubes (SWNTs) with controlled chirality distribution and to further develop SWNT-based materials with new functions corresponding to electronic and biomedical applications. Since SWNTs are furnished with hollow inner spaces, it is very interesting to inject various kinds of atoms and molecules into their nanospaces based on plasma nanotechnology. The encapsulation of alkali-metal atoms, halogen atoms, fullerene or azafullerene molecules inside the carbon nanotubes is realized using ionic plasmas of positive and negative ions such as alkali-fullerene, alkali-halogen, and pair or quasipair ion plasmas. Furthermore, an electrolyte solution plasma with DNA negative ions is prepared in order to encapsulate DNA molecules into the nanotubes. It is found that the electronic and optical properties of various encapsulated SWNTs are significantly changed compared with those of pristine ones. As a result, a number of interesting transport phenomena such as air-stable n- and p-type behaviour, p-n junction characteristic, and photoinduced electron transfer are observed. Finally, the creation of an emerging SWNTs-based nanobioelectronics system is challenged. Specifically, the bottom-up electric-field-assisted reactive ion etching is proposed to control the chirality of SWNTs, unexplored SWNT properties of magnetism and superconductivity are aimed at being pioneered, and innovative biomedical-nanoengineering with encapsulated SWNTs of higher-order structure are expected to be developed by applying advanced gas-liquid interfacial plasmas.
机译:基于等离子体的纳米技术是一个快速发展的研究领域,其范围从气态和液态等离子体的物理到材料科学,表面科学和纳米加工。在我们的案例中,进行了纳米级等离子体处理,以生长具有可控制手性分布的单壁碳纳米管(SWNT),并进一步开发具有与电子和生物医学应用相对应的新功能的基于SWNT的材料。由于单壁碳纳米管具有中空的内部空间,因此基于等离子体纳米技术将各种原子和分子注入其纳米空间非常有趣。碳纳米管中碱金属原子,卤素原子,富勒烯或氮杂富勒烯分子的封装是通过使用正负离子的离子等离子体(例如碱富勒烯,碱卤原子和成对或准对离子等离子体)实现的。此外,制备具有DNA负离子的电解质溶液等离子体以将DNA分子包封到纳米管中。发现与原始的那些相比,各种封装的SWNT的电子和光学性质显着改变。结果,观察到许多有趣的传输现象,例如空气稳定的n型和p型行为,p-n结特性和光致电子转移。最后,创建一个新兴的基于单壁碳纳米管的纳米生物电子系统面临挑战。具体而言,提出了自下而上的电场辅助反应性离子刻蚀,以控制单壁碳纳米管的手性,旨在开拓未开发的磁性和超导性单壁碳纳米管的性质,并创新性地采用具有高阶结构的单壁碳纳米管封装的生物医学纳米工程技术。有望通过应用先进的气液界面等离子体来开发。

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