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Noncovalent functionalization of pristine CVD single-walled carbon nanotubes with 3d metal(Ⅱ) phthalocyanines by adsorption from the gas phase

机译:气相吸附法对3d金属酞菁类化合物进行CVD原始单壁碳纳米管的非共价官能化

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Graphical abstractDisplay OmittedHighlightsCarbon nanotubes were noncovalently functionalized with phthalocyanines.Functionalization is based on deposition from the gas phase.Functionalization is carried out at 400–500 °C without using solvents.Interactions between the components are very strong.AbstractNoncovalent hybrids of carbon nanotubes (CNTs) with phthalocyanines (Pcs) is a subject of growing research effort focused on the development of new efficient organic photovoltaic cells, heterogeneous catalysts, lithium batteries, gas sensors, field effect transistors, among other possible applications. The main advantage of using unsubstituted Pcs is their very moderate cost and easy commercial availability. Unfortunately, the deposition of unsubstituted Pcs onto CNT sidewalls via the traditional liquid-phase strategy proves to be very problematic due to an extremely poor solubility of Pcs. At the same time, unsubstituted free-base H2Pc ligand and many of its transition metal complexes exhibit high thermal stability and volatility under reduced pressure, which allows for their physical vapor deposition onto solid surfaces. In the present work, we demonstrated the possibility of simple, fast, efficient and environmentally friendly noncovalent functionalization of single-walled CNTs (SWNTs) with a series of 3dmetal(II) phthalocyanines Me(II)Pc, where Me = Co, Ni, Cu and Zn. The functionalization can be performed at 400–500 °C under moderate vacuum, and takes about 2–3 h only. The nanohybrids obtained were characterized by means of Fourier-transform infrared, Raman, UV–vis and energy-dispersive X-ray spectroscopy (EDS), thermogravimetric analysis (TGA), scanning and transmission electron microscopy. TGA suggested that Pc weight content is 30%, 17% and 35% for NiPc, CuPc and ZnPc, respectively (CoPc exhibited anomalous behavior), which is close to the estimates from EDS spectra of 24–39%, 27–36% and 27–44% for CoPc, CuPc and ZnPc, respectively. A strong increase in intensity of D band in the Raman spectra of SWNT‒Pc hybrids, as compared to that of pristine nanotubes, was interpreted as very strong interactions between Pc molecules and SWNT sidewalls. Very high absolute values of binding energies of 32.46–37.12 kcal/mol and the patterns of HOMO and LUMO distribution, calculated at the PBE-D/DNP level of density functional theory, also suggested that the interactions between metal phthalocyanines studied and nanotube sidewalls are very strong.
机译: 图形摘要 < ce:simple-para>省略显示 突出显示 碳纳米管是非共价的 功能化基于气相沉积。 功能化是在400– 500°C,无需使用溶剂。 组件之间的交互作用非常强。 摘要 碳纳米管(CNTs)与酞菁(Pcs)的非共价杂化是研究的主题,其重点是新型高效有机光伏电池,非均相催化剂,锂电池,气体传感器,场效应晶体管以及其他可能的应用。使用未取代的Pcs的主要优点是其成本非常适中且易于商业获得。不幸的是,由于Pcs的溶解性极差,因此通过传统的液相策略将未取代的Pcs沉积在CNT侧壁上被证明是非常成问题的。同时,未取代的游离碱H 2 Pc配体及其许多过渡金属配合物在减压下表现出高的热稳定性和挥发性,这使其具有物理气相沉积到固体表面上。在目前的工作中,我们证明了简单,快速,高效和环保的单壁碳纳米管(SWNT)与一系列3 d 金属(II)酞菁非功能性官能化的可能性Me(II)Pc,其中Me = Co,Ni,Cu和Zn。可以在中等真空下在400–500 C的温度下进行功能化,仅需2–3 h。通过傅立叶变换红外光谱,拉曼光谱,紫外可见光谱和能量色散X射线光谱(EDS),热重分析(TGA),扫描和透射电子显微镜对得到的纳米杂化物进行表征。 TGA建议NiPc,CuPc和ZnPc的Pc重量含量分别为30%,17%和35%(CoPc表现出异常行为),这接近于EDS光谱估计的24-39%,27-36%和25%。 CoPc,CuPc和ZnPc分别为27-44%。与原始纳米管相比,SWNT‒Pc杂化物的拉曼光谱中D带强度的强烈增加被认为是Pc分子与SWNT侧壁之间非常强的相互作用。在密度泛函理论的PBE-D / DNP水平上计算得出的结合能的绝对值非常高,为32.46–37.12 kcal / mol,并且HOMO和LUMO分布的模式也表明,研究的金属酞菁与纳米管侧壁之间的相互作用是非常强大。

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