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Ambipolar-transporting coaxial nanotubes with a tailored molecular graphene–fullerene heterojunction

机译:具有量身定制的分子石墨烯-富勒烯异质结的双极性传输同轴纳米管

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摘要

Despite a large steric bulk of C60, a molecular graphene with a covalently linked C60 pendant [hexabenzocoronene (HBC)–C60; 1] self-assembles into a coaxial nanotube whose wall consists of a graphite-like π-stacked HBC array, whereas the nanotube surface is fully covered by a molecular layer of clustering C60. Because of this explicit coaxial configuration, the nanotube exhibits an ambipolar character in the field-effect transistor output [hole mobility (μh) = 9.7 × 10−7 cm2 V−1 s−1; electron mobility (μe) = 1.1 × 10−5 cm2 V−1 s−1] and displays a photovoltaic response upon light illumination. Successful coassembly of 1 and an HBC derivative without C60 () allows for tailoring the p heterojunction in the nanotube, so that its ambipolar carrier transport property can be optimized for enhancing the open-circuit voltage in the photovoltaic output. As evaluated by an electrodeless method called flash-photolysis time-resolved microwave conductivity technique, the intratubular hole mobility (2.0 cm2 V−1 s−1) of a coassembled nanotube containing 10 mol % of HBC–C60 () is as large as the intersheet mobility in graphite. The homotropic nanotube of 2 blended with a soluble C60 derivative [(6,6)-phenyl C61 butyric acid methyl ester] displayed a photovoltaic response with a much different composition dependency, where the largest open-circuit voltage attained was obviously lower than that realized by the coassembly of 1 and 2.
机译:尽管C60的空间体积很大,但具有共价连接的C60侧链的分子石墨烯[六苯并二茂铁(HBC)–C60; 1]自组装成同轴纳米管,其壁由类似石墨的π堆积HBC阵列组成,而纳米管表面完全被簇状C60分子层覆盖。由于这种明显的同轴结构,纳米管在场效应晶体管的输出中表现出双极性特性[空穴迁移率(μh)= 9.7×10 −7 cm 2 V < sup> -1 s -1 ;电子迁移率(μe)= 1.1×10 −5 cm 2 V −1 s -1 ]并显示光照下的光伏响应。 1和不含C60()的HBC衍生物的成功共组装可定制纳米管中的p / n异质结,因此可优化其双极性载流子传输特性,以增强光伏输出中的开路电压。如通过无电极方法(称为快速光解时间分辨微波电导率技术)所评估的,管内孔迁移率(2.0 cm 2 V -1 s -1

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