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Thermal behavior of etched tracks and embedded metallic nanotubules

机译:蚀刻轨道和嵌入式金属纳米管的热行为

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Etched ion tracks in polymers, and metallic nanotubules embedded therein have been described since quite a number of years, and first applications have already been reported in literature. Some of the proposed future applications suggest the deposition of matter within the tracks or tubules, with that matter to be subsequently thermally processed to obtain its final desired properties. For this case it is important to know the thermal behavior of both the tracks and tubules. Therefore corresponding examinations have been performed, by using ion transmission spectrometry (ITS) as the tool. For polyimide as the carrier polymer, ITS reveals unchanged track geometry up to /spl sim/450 to 500/spl deg/C, and a track widening when carbonization of that polymer sets in. These topological changes could be followed up to /spl sim/700 /spl deg/C. If silver tubules had been embedded in the tracks before, the recorded track diameter remains stable up to the highest annealing temperature, i.e., the metal tubules stabilize the track topology. Corresponding experiments with etched tracks in commercial PET foils of different provenience yield contradictory results that are ascribed to different additives of these products. Already a slight temperature increase may lead to changing track radii, and embedded silver tubules are not helpful in stabilizing the pores in PET. These results suggest the applicability of microporous foils of polyimide for the production of new nanoscopic devices up to formation temperatures of at least /spl sim/450 /spl deg/C. If carbonization of the host polymer and the presence of metallic tubules can be tolerated for the proposed application, then even processing temperatures of up to /spl sim/700/spl deg/C are possible. If, for contrast, PET microporous foils are used as templates, any thermal processing should be avoided.
机译:在聚合物中的蚀刻离子轨道和其中嵌入其中的金属纳米齿轮已经被描述,并且已经描述了相当长的年度,并且在文献中已经报道了第一个应用。一些拟议的未来应用建议在轨道或小管内沉积物质,随后被热处理以获得其最终所需性质。对于这种情况,重要的是要知道轨道和小管的热行为。因此,通过使用离子透射光谱法(其)作为工具进行了相应的检查。对于作为载体聚合物的聚酰亚胺,其透露未改变的轨道几何形状,直到/ SPL SIM / 450至500 / SPL DEG / C,以及当该聚合物碳化的碳化时的轨道加宽。这些拓扑变化可以跟进/ SPL SIM / 700 / spl deg / c。如果之前已经嵌入了银管中,则记录的轨道直径保持稳定到最高的退火温度,即金属小管稳定轨道拓扑。在不同成本的商业宠物箔中的蚀刻轨道的相应实验产生矛盾的结果,其归因于这些产品的不同添加剂。已经略有温度升高可能导致轨道半径变化,嵌入式银小管与稳定宠物中的孔隙不有用。这些结果表明,聚酰亚胺的微孔箔适用于生产新的纳米镜装置的形成温度至少/ SPL SIM / 450 / SPL DEG / C的形成温度。如果可以容忍宿主聚合物的碳化和金属小管的存在,则可用于所提出的应用,因此甚至可以处理高达/ SPL SIM / 700 / SPL DEG / C的温度。如果为了对比,请使用PET微孔箔作为模板,应避免任何热处理。

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