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Quinone molecules encapsulated in SWCNTs for low-temperature Na ion batteries

机译:醌分子在SWCNT中封装,用于低温Na离子电池

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We have performed Li and Na ion charge-discharge experiments of 9,10-phenanthrene quinone (PhQ) molecules encapsulated in single-walled carbon nanotubes (SWCNTs) with mean tube diameters of 1.5 and 2.5 nm at room temperature and also at low temperatures. The Na ion reversible capacity of PhQ encapsulated in the larger diameter SWCNTs, measured at a low temperature of 0 degrees C, remained as high as that measured at room temperature (RT), while the capacity of PhQ in the smaller diameter SWCNTs at 0 degrees C was about a half of that at RT. The diameter dependence of the capacity should be attributed to the difference in the interactions between the encapsulated PhQ molecules and the host SWCNTs, which was revealed by Raman peak profile analysis. Charge-transfer reaction from metallic tubes to PhQ molecules encapsulated in the smaller diameter SWCNTs was detected by Raman measurements. The electrostatic interaction between charged SWCNTs and PhQ molecules, induced by the charge-transfer reaction, would partly contribute to the stabilization of PhQ molecules in the smaller diameter SWCNTs, while only van der Waals interaction stabilizes PhQ molecules in the larger diameter SWCNTs. The difference in stability was confirmed by thermogravimetric, x-ray photoelectron spectroscopy, and Raman measurements. Charge-discharge curves of PhQ encapsulated in SWCNTs were also discussed based on the stability difference.
机译:我们已经进行了Li和Na离子电荷 - 放电实验,其在单壁碳纳米管(SWCNT)中包封的9,10-菲醌(PHQ)分子,平均管直径在室温下为1.5和2.5nm,并且在低温下。在0℃的低温下封装在较大直径SWCNT中的PPQ的Na离子可逆容量保持高,如在室温(RT)下测量,而PPQ在0度下的SWCNT的容量为0度C在室温下大约一半。容量的直径依赖性应归因于封装的PHQ分子与宿主SWNT之间的相互作用差异,其被拉曼峰谱分析揭示。通过拉曼测量检测来自金属管的金属管与封装在较小直径SWCNT中的PHQ分子的电荷转移反应。电荷转移反应引起的带电SWCNT和PHQ分子之间的静电相互作用将部分有助于较小直径SWCNT中的PHQ分子的稳定,而VAR DAR WAAS相互作用稳定较大直径SWCNT的PHQ分子。通过热重分析,X射线光电子能谱和拉曼测量来确认稳定性差异。还基于稳定性差异讨论了SWCNT中封装在SWCNT中的PHQ的电荷放电曲线。

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